Metal complex containing azabenzothiazole

Information

  • Patent Grant
  • 12289984
  • Patent Number
    12,289,984
  • Date Filed
    Tuesday, September 11, 2018
    7 years ago
  • Date Issued
    Tuesday, April 29, 2025
    5 months ago
Abstract
Metal complexes containing azabenzothiazole are disclosed, which comprise a new series of ligands containing azabenzothiazole structure. The metal complexes can be used as emitters in the emissive layer of an organic electroluminescent device. The use of these novel metal complexes as emitters in OLED devices leads to more saturated color than the compounds containing benzothiazole ligands. An electroluminescent device and a formulation are also disclosed.
Description
FIELD OF THE INVENTION

The present invention relates to compounds for organic electronic devices, such as organic light emitting devices. More specifically, the present invention relates to a metal complex containing azabenzothiazole ligands, an organic electroluminescent device and a formulation comprising the metal complex.


BACKGROUND ART

An organic electronic device is preferably selected from the group consisting of organic light-emitting diodes (OLEDs), organic field-effect transistors (O-FETs), organic light-emitting transistors (OLETs), organic photovoltaic devices (OPVs), dye-sensitized solar cells (DSSCs), organic optical detectors, organic photoreceptors, organic field-quench devices (OFQDs), light-emitting electrochemical cells (LECs), organic laser diodes and organic plasmon emitting devices.


In 1987, Tang and Van Slyke of Eastman Kodak reported a bilayer organic electroluminescent device, which comprises an arylamine hole transporting layer and a tris-8-hydroxyquinolato-aluminum layer as the electron and emitting layer (Applied Physics Letters, 1987, 51 (12): 913-915). Once a bias is applied to the device, green light was emitted from the device. This invention laid the foundation for the development of modern organic light-emitting diodes (OLEDs). State-of-the-art OLEDs may comprise multiple layers such as charge injection and transporting layers, charge and exciton blocking layers, and one or multiple emissive layers between the cathode and anode. Since OLED is a self-emitting solid state device, it offers tremendous potential for display and lighting applications. In addition, the inherent properties of organic materials, such as their flexibility, may make them well suited for particular applications such as fabrication on flexible substrates.


OLED can be categorized as three different types according to its emitting mechanism. The OLED invented by Tang and van Slyke is a fluorescent OLED. It only utilizes singlet emission. The triplets generated in the device are wasted through nonradiative decay channels. Therefore, the internal quantum efficiency (IQE) of a fluorescent OLED is only 25%. This limitation hindered the commercialization of OLED. In 1997, Forrest and Thompson reported phosphorescent OLED, which uses triplet emission from heave metal containing complexes as the emitter. As a result, both singlet and triplets can be harvested, achieving 100% IQE. The discovery and development of phosphorescent OLED contributed directly to the commercialization of active-matrix OLED (AMOLED) due to its high efficiency. Recently, Adachi achieved high efficiency through thermally activated delayed fluorescence (TADF) of organic compounds. These emitters have small singlet-triplet gap that makes the transition from triplet back to singlet possible. In the TADF device, the triplet excitons can go through reverse intersystem crossing to generate singlet excitons, resulting in high IQE.


OLEDs can also be classified as small molecule and polymer OLEDs according to the forms of the materials used. Small molecule refers to any organic or organometallic material that is not a polymer. The molecular weight of a small molecule can be large as long as it has well defined structure. Dendrimers with well-defined structures are considered as small molecules. Polymer OLEDs include conjugated polymers and non-conjugated polymers with pendant emitting groups. Small molecule OLED can become a polymer OLED if post polymerization occurred during the fabrication process.


There are various methods for OLED fabrication. Small molecule OLEDs are generally fabricated by vacuum thermal evaporation. Polymer OLEDs are fabricated by solution process, such as spin-coating, ink-jet printing, and nozzle printing. Small molecule OLEDs can also be fabricated by solution process if the materials can be dissolved or dispersed in solvents.


The emitting color of an OLED can be achieved by emitter structural design. An OLED may comprise one emitting layer or a plurality of emitting layers to achieve desired spectrum. In the case of green, yellow, and red OLEDs, phosphorescent emitters have successfully reached commercialization. Blue phosphorescent emitters still suffer from non-saturated blue color, short device lifetime, and high operating voltage. Commercial full-color OLED displays normally adopt a hybrid strategy, using fluorescent blue and phosphorescent yellow, or red and green. At present, efficiency roll-off of phosphorescent OLEDs at high brightness remains a problem. In addition, it is desirable to have more saturated emitting color, higher efficiency, and longer device lifetime.


Compounds containing benzothiazole ligands have been used in phosphorescent OLEDs, but their properties do not meet the requirements, such as color saturation. The present invention provides a series of new metal complexes containing azabenzothiazole ligands. It has been found through investigation that the use of these compounds as emitters in phosphorescent OLED devices enables to obtain more saturated color than the compounds containing benzothiazole ligands.


SUMMARY OF THE INVENTION

The present invention aims to provide a series of new metal complexes containing azabenzothiazole ligands to solve at least part of above problems. The metal complexes can be used as emitters in the emissive layer of an organic electroluminescent device. Compared to existing compounds containing benzothiazole ligands, the use of these compounds as emitters in phosphorescent OLED devices enables to obtain more saturated color and better device performance.


According to an embodiment of the present invention, a metal complex having a partial structure represented by Formula 1 is disclosed:




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Wherein Cy is a substituted or unsubstituted aryl or heteroaryl group having 5 to 24 aromatic ring atoms;

    • wherein Cy is bonded to M via a carbon atom;
    • wherein M is selected from the group consisting of Cu, Ag, Au, Ru, Rh, Pd, Os, Ir, and Pt;
    • wherein X is selected from the group consisting of O, S, and Se;
    • wherein X1 to X4 are independently selected from N or CR;
    • at least one of X1 to X4 is N;
    • wherein R is selected from the group consisting of hydrogen, deuterium, halogen, a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted cycloalkyl group having 3 to 20 ring carbon atoms, a substituted or unsubstituted heteroalkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted arylalkyl group having 7 to 30 carbon atoms, a substituted or unsubstituted alkoxy group having 1 to 20 carbon atoms, a substituted or unsubstituted aryloxy group having 6 to 30 carbon atoms, a substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, a substituted or unsubstituted heteroaryl group having 3 to 30 carbon atoms, a substituted or unsubstituted alkylsilyl group having 3 to 20 carbon atoms, a substituted or unsubstituted arylsilyl group having 6 to 20 carbon atoms, a substituted or unsubstituted amino group having 0 to 20 carbon atoms, an acyl group, a carbonyl group, a carboxylic acid group, an ester group, a nitrile group, an isonitrile group, a sulfanyl group, a sulfinyl group, a sulfonyl group, a phosphino group, and combinations thereof;
    • two adjacent substituents are optionally joined to form a ring.


According to another embodiment, an electroluminescent device is disclosed, which comprising:

    • an anode,
    • a cathode,
    • and an organic layer, disposed between the anode and the cathode, the organic layer comprises a metal complex having a partial structure represented by Formula 1:




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Wherein Cy is a substituted or unsubstituted aryl or heteroaryl group having 5 to 24 aromatic ring atoms;

    • wherein Cy is bonded to M via a carbon atom;
    • wherein M is selected from the group consisting of Cu, Ag, Au, Ru, Rh, Pd, Os, Ir, and Pt;
    • wherein X is selected from the group consisting of O, S, and Se;
    • wherein X1 to X4 are independently selected from N or CR;
    • at least one of X1 to X4 is N;
    • wherein R is selected from the group consisting of hydrogen, deuterium, halogen, a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted cycloalkyl group having 3 to 20 ring carbon atoms, a substituted or unsubstituted heteroalkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted arylalkyl group having 7 to 30 carbon atoms, a substituted or unsubstituted alkoxy group having 1 to 20 carbon atoms, a substituted or unsubstituted aryloxy group having 6 to 30 carbon atoms, a substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, a substituted or unsubstituted heteroaryl group having 3 to 30 carbon atoms, a substituted or unsubstituted alkylsilyl group having 3 to 20 carbon atoms, a substituted or unsubstituted arylsilyl group having 6 to 20 carbon atoms, a substituted or unsubstituted amino group having 0 to 20 carbon atoms, an acyl group, a carbonyl group, a carboxylic acid group, an ester group, a nitrile group, an isonitrile group, a sulfanyl group, a sulfinyl group, a sulfonyl group, a phosphino group, and combinations thereof;
    • two adjacent substituents are optionally joined to form a ring.


According to yet another embodiment, a formulation comprising the metal complex is also disclosed. The metal complex comprises a partial structure represented by Formula 1.


The metal complexes containing azabenzothiazole ligands disclosed in the present invention can be used as emitters in the emissive layer of an organic electroluminescent device. Compared to existing compounds containing benzothiazole ligands, the use of these novel compounds as emitters in phosphorescent OLED devices can obtain more saturated color and better device performance.





BRIEF DESCRIPTION OF THE DRAWINGS


FIG. 1 schematically shows an organic light emitting device that can incorporate the metal complex or formulation disclosed herein.



FIG. 2 schematically shows another organic light emitting device that can incorporate the metal complex or formulation disclosed herein.



FIG. 3 shows the Formula 1 of metal complex having a partial structure disclosed herein.





DETAILED DESCRIPTION

OLEDs can be fabricated on various types of substrates such as glass, plastic, and metal foil. FIG. 1 schematically shows the organic light emitting device 100 without limitation. The figures are not necessarily drawn to scale. Some of the layer in the figure can also be omitted as needed. Device 100 may include a substrate 101, an anode 110, a hole injection layer 120, a hole transport layer 130, an electron blocking layer 140, an emissive layer 150, a hole blocking layer 160, an electron transport layer 170, an electron injection layer 180 and a cathode 190. Device 100 may be fabricated by depositing the layers described in order. The properties and functions of these various layers, as well as example materials, are described in more detail in U.S. Pat. No. 7,279,704 at cols. 6-10, which are incorporated by reference in its entirety.


More examples for each of these layers are available. For example, a flexible and transparent substrate-anode combination is disclosed in U.S. Pat. No. 5,844,363, which is incorporated by reference in its entirety. An example of a p-doped hole transport layer is m-MTDATA doped with F4-TCNQ at a molar ratio of 50:1, as disclosed in U.S. Patent Application Publication No. 2003/0230980, which is incorporated by reference in its entirety. Examples of host materials are disclosed in U.S. Pat. No. 6,303,238 to Thompson et al., which is incorporated by reference in its entirety. An example of an n-doped electron transport layer is BPhen doped with Li at a molar ratio of 1:1, as disclosed in U.S. Patent Application Publication No. 2003/0230980, which is incorporated by reference in its entirety. U.S. Pat. Nos. 5,703,436 and 5,707,745, which are incorporated by reference in their entireties, disclose examples of cathodes including compound cathodes having a thin layer of metal such as Mg:Ag with an overlying transparent, electrically-conductive, sputter-deposited ITO layer. The theory and use of blocking layers is described in more detail in U.S. Pat. No. 6,097,147 and U.S. Patent Application Publication No. 2003/0230980, which are incorporated by reference in their entireties. Examples of injection layers are provided in U.S. Patent Application Publication No. 2004/0174116, which is incorporated by reference in its entirety. A description of protective layers may be found in U.S. Patent Application Publication No. 2004/0174116, which is incorporated by reference in its entirety.


The layered structure described above is provided by way of non-limiting example. Functional OLEDs may be achieved by combining the various layers described in different ways, or layers may be omitted entirely. It may also include other layers not specifically described. Within each layer, a single material or a mixture of multiple materials can be used to achieve optimum performance. Any functional layer may include several sublayers. For example, the emissive layer may have a two layers of different emitting materials to achieve desired emission spectrum.


In one embodiment, an OLED may be described as having an “organic layer” disposed between a cathode and an anode. This organic layer may comprise a single layer or multiple layers.


An OLED can be encapsulated by a barrier layer to protect it from harmful species from the environment such as moisture and oxygen. FIG. 2 schematically shows the organic light emitting device 200 without limitation. FIG. 2 differs from FIG. 1 in that the organic light emitting device 200 include a barrier layer 102, which is above the cathode 190. Any material that can provide the barrier function can be used as the barrier layer such as glass and organic-inorganic hybrid layers. The barrier layer should be placed directly or indirectly outside of the OLED device. Multilayer thin film encapsulation was described in U.S. Pat. No. 7,968,146, which is herein incorporated by reference in its entirety.


Devices fabricated in accordance with embodiments of the invention can be incorporated into a wide variety of consumer products that have one or more of the electronic component modules (or units) incorporated therein. Some examples of such consumer products include flat panel displays, monitors, medical monitors, televisions, billboards, lights for interior or exterior illumination and/or signaling, heads-up displays, fully or partially transparent displays, flexible displays, smart phones, tablets, phablets, wearable devices, smart watches, laptop computers, digital cameras, camcorders, viewfinders, micro-displays, 3-D displays, vehicles displays, and vehicle tail lights.


The materials and structures described herein may be used in other organic electronic devices listed above.


As used herein, “top” means furthest away from the substrate, while “bottom” means closest to the substrate. Where a first layer is described as “disposed over” a second layer, the first layer is disposed further away from substrate. There may be other layers between the first and second layer, unless it is specified that the first layer is “in contact with” the second layer. For example, a cathode may be described as “disposed over” an anode, even though there are various organic layers in between.


As used herein, “solution processible” means capable of being dissolved, dispersed, or transported in and/or deposited from a liquid medium, either in solution or suspension form.


A ligand may be referred to as “photoactive” when it is believed that the ligand directly contributes to the photoactive properties of an emissive material. A ligand may be referred to as “ancillary” when it is believed that the ligand does not contribute to the photoactive properties of an emissive material, although an ancillary ligand may alter the properties of a photoactive ligand.


It is believed that the internal quantum efficiency (IQE) of fluorescent OLEDs can exceed the 25% spin statistics limit through delayed fluorescence. As used herein, there are two types of delayed fluorescence, i.e. P-type delayed fluorescence and E-type delayed fluorescence. P-type delayed fluorescence is generated from triplet-triplet annihilation (TTA).


On the other hand, E-type delayed fluorescence does not rely on the collision of two triplets, but rather on the transition between the triplet states and the singlet excited states. Compounds that are capable of generating E-type delayed fluorescence are required to have very small singlet-triplet gaps to convert between energy states. Thermal energy can activate the transition from the triplet state back to the singlet state. This type of delayed fluorescence is also known as thermally activated delayed fluorescence (TADF). A distinctive feature of TADF is that the delayed component increases as temperature rises. If the reverse intersystem crossing rate is fast enough to minimize the non-radiative decay from the triplet state, the fraction of back populated singlet excited states can potentially reach 75%. The total singlet fraction can be 100%, far exceeding 25% of the spin statistics limit for electrically generated excitons.


E-type delayed fluorescence characteristics can be found in an exciplex system or in a single compound. Without being bound by theory, it is believed that E-type delayed fluorescence requires the luminescent material to have a small singlet-triplet energy gap (ΔES-T). Organic, non-metal containing, donor-acceptor luminescent materials may be able to achieve this. The emission in these materials is often characterized as a donor-acceptor charge-transfer (CT) type emission. The spatial separation of the HOMO and LUMO in these donor-acceptor type compounds often results in small ΔES-T. These states may involve CT states. Often, donor-acceptor luminescent materials are constructed by connecting an electron donor moiety such as amino- or carbazole-derivatives and an electron acceptor moiety such as N-containing six-membered aromatic rings.


Definition of Terms of Substituents


halogen or halide—as used herein includes fluorine, chlorine, bromine, and iodine.


Alkyl—contemplates both straight and branched chain alkyl groups. Examples of the alkyl group include methyl group, ethyl group, propyl group, isopropyl group, n-butyl group, s-butyl group, isobutyl group, t-butyl group, n-pentyl group, n-hexyl group, n-heptyl group, n-octyl group, n-nonyl group, n-decyl group, n-undecyl group, n-dodecyl group, n-tridecyl group, n-tetradecyl group, n-pentadecyl group, n-hexadecyl group, n-heptadecyl group, n-octadecyl group, neopentyl group, 1-methylpentyl group, 2-methylpentyl group, 1-pentylhexyl group, 1-butylpentyl group, 1-heptyloctyl group, 3-methylpentyl group. Additionally, the alkyl group may be optionally substituted. The carbons in the alkyl chain can be replaced by other hetero atoms. Of the above, preferred are methyl group, ethyl group, propyl group, isopropyl group, n-butyl group, s-butyl group, isobutyl group, t-butyl group, n-pentyl group, and neopentyl group.


Cycloalkyl—as used herein contemplates cyclic alkyl groups. Preferred cycloalkyl groups are those containing 4 to 10 ring carbon atoms and includes cyclobutyl, cyclopentyl, cyclohexyl, 4-methylcyclohexyl, 4,4-dimethylcylcohexyl, 1-adamantyl, 2-adamantyl, 1-norbornyl, 2-norbornyl and the like. Additionally, the cycloalkyl group may be optionally substituted. The carbons in the ring can be replaced by other hetero atoms.


Alkenyl—as used herein contemplates both straight and branched chain alkene groups. Preferred alkenyl groups are those containing two to fifteen carbon atoms. Examples of the alkenyl group include vinyl group, allyl group, 1-butenyl group, 2-butenyl group, 3-butenyl group, 1,3-butandienyl group, 1-methylvinyl group, styryl group, 2,2-diphenylvinyl group, 1,2-diphenylvinyl group, 1-methylallyl group, 1,1-dimethylallyl group, 2-methylallyl group, 1-phenylallyl group, 2-phenylallyl group, 3-phenylallyl group, 3,3-diphenylallyl group, 1,2-dimethylallyl group, 1-phenyl1-butenyl group, and 3-phenyl-1-butenyl group. Additionally, the alkenyl group may be optionally substituted.


Alkynyl—as used herein contemplates both straight and branched chain alkyne groups. Preferred alkynyl groups are those containing two to fifteen carbon atoms. Additionally, the alkynyl group may be optionally substituted.


Aryl or aromatic group—as used herein contemplates noncondensed and condensed systems. Preferred aryl groups are those containing six to sixty carbon atoms, preferably six to twenty carbon atoms, more preferably six to twelve carbon atoms. Examples of the aryl group include phenyl, biphenyl, terphenyl, triphenylene, tetraphenylene, naphthalene, anthracene, phenalene, phenanthrene, fluorene, pyrene, chrysene, perylene, and azulene, preferably phenyl, biphenyl, terphenyl, triphenylene, fluorene, and naphthalene. Additionally, the aryl group may be optionally substituted. Examples of the non-condensed aryl group include phenyl group, biphenyl-2-yl group, biphenyl-3-yl group, biphenyl-4-yl group, p-terphenyl-4-yl group, p-terphenyl-3-yl group, p-terphenyl-2-yl group, m-terphenyl-4-yl group, m-terphenyl-3-yl group, m-terphenyl-2-yl group, o-tolyl group, m-tolyl group, p-tolyl group, p-t-butylphenyl group, p-(2-phenylpropyl)phenyl group, 4′-methylbiphenylyl group, 4″-t-butyl p-terphenyl-4-yl group, o-cumenyl group, m-cumenyl group, p-cumenyl group, 2,3-xylyl group, 3,4-xylyl group, 2,5-xylyl group, mesityl group, and m-quarterphenyl group.


Heterocyclic group or heterocycle—as used herein contemplates aromatic and non-aromatic cyclic groups. Hetero-aromatic also means heteroaryl. Preferred non-aromatic heterocyclic groups are those containing 3 to 7 ring atoms which includes at least one hetero atom such as nitrogen, oxygen, and sulfur. The heterocyclic group can also be an aromatic heterocyclic group having at least one heteroatom selected from nitrogen atom, oxygen atom, sulfur atom, and selenium atom.


Heteroaryl—as used herein contemplates noncondensed and condensed hetero-aromatic groups that may include from one to five heteroatoms. Preferred heteroaryl groups are those containing three to thirty carbon atoms, preferably three to twenty carbon atoms, more preferably three to twelve carbon atoms. Suitable heteroaryl groups include dibenzothiophene, dibenzofuran, dibenzoselenophene, furan, thiophene, benzofuran, benzothiophene, benzoselenophene, carbazole, indolocarbazole, pyridylindole, pyrrolodipyridine, pyrazole, imidazole, triazole, oxazole, thiazole, oxadiazole, oxatriazole, dioxazole, thiadiazole, pyridine, pyridazine, pyrimidine, pyrazine, triazine, oxazine, oxathiazine, oxadiazine, indole, benzimidazole, indazole, indoxazine, benzoxazole, benzisoxazole, benzothiazole, quinoline, isoquinoline, cinnoline, quinazoline, quinoxaline, naphthyridine, phthalazine, pteridine, xanthene, acridine, phenazine, phenothiazine, phenoxazine, benzofuropyridine, furodipyridine, benzothienopyridine, thienodipyridine, benzoselenophenopyridine, and selenophenodipyridine, preferably dibenzothiophene, dibenzofuran, dibenzoselenophene, carbazole, indolocarbazole, imidazole, pyridine, triazine, benzimidazole, 1,2-azaborine, 1,3-azaborine, 1,4-azaborine, borazine, and aza-analogs thereof. Additionally, the heteroaryl group may be optionally substituted.


Alkoxy—it is represented by —O-Alkyl. Examples and preferred examples thereof are the same as those described above. Examples of the alkoxy group having 1 to 20 carbon atoms, preferably 1 to 6 carbon atoms include methoxy group, ethoxy group, propoxy group, butoxy group, pentyloxy group, and hexyloxy group. The alkoxy group having 3 or more carbon atoms may be linear, cyclic or branched.


Aryloxy—it is represented by —O-Aryl or —O-heteroaryl. Examples and preferred examples thereof are the same as those described above. Examples of the aryloxy group having 6 to 40 carbon atoms include phenoxy group and biphenyloxy group.


Arylalkyl—as used herein contemplates an alkyl group that has an aryl substituent. Additionally, the arylalkyl group may be optionally substituted. Examples of the arylalkyl group include benzyl group, 1-phenylethyl group, 2-phenylethyl group, 1-phenylisopropyl group, 2-phenylisopropyl group, phenyl-t-butyl group, alpha.-naphthylmethyl group, 1-alpha.-naphthylethyl group, 2-alpha-naphthylethyl group, 1-alpha-naphthylisopropyl group, 2-alpha-naphthylisopropyl group, beta-naphthylmethyl group, 1-beta-naphthylethyl group, 2-beta-naphthylethyl group, 1-beta-naphthylisopropyl group, 2-beta-naphthylisopropyl group, p-methylbenzyl group, m-methylbenzyl group, o-methylbenzyl group, p-chlorobenzyl group, m-chlorobenzyl group, o-chlorobenzyl group, p-bromobenzyl group, m-bromobenzyl group, o-bromobenzyl group, p-iodobenzyl group, m-iodobenzyl group, o-iodobenzyl group, p-hydroxybenzyl group, m-hydroxybenzyl group, o-hydroxybenzyl group, p-aminobenzyl group, m-aminobenzyl group, o-aminobenzyl group, p-nitrobenzyl group, m-nitrobenzyl group, o-nitrobenzyl group, p-cyanobenzyl group, m-cyanobenzyl group, o-cyanobenzyl group, 1-hydroxy-2-phenylisopropyl group, and 1-chloro2-phenylisopropyl group. Of the above, preferred are benzyl group, p-cyanobenzyl group, m-cyanobenzyl group, o-cyanobenzyl group, 1-phenylethyl group, 2-phenylethyl group, 1-phenylisopropyl group, and 2-phenylisopropyl group.


The term “aza” in azadibenzofuran, aza-dibenzothiophene, etc. means that one or more of the C—H groups in the respective aromatic fragment are replaced by a nitrogen atom. For example, azatriphenylene encompasses dibenzo[f,h]quinoxaline,dibenzo[f,h]quinoline and other analogues with two or more nitrogens in the ring system. One of ordinary skill in the art can readily envision other nitrogen analogs of the aza-derivatives described above, and all such analogs are intended to be encompassed by the terms as set forth herein.


The alkyl, cycloalkyl, alkenyl, alkynyl, aralkyl, heterocyclic group, aryl, and heteroaryl may be unsubstituted or may be substituted with one or more substituents selected from the group consisting of deuterium, halogen, alkyl, cycloalkyl, arylalkyl, alkoxy, aryloxy, amino, cyclic amino, silyl, alkenyl, cycloalkenyl, heteroalkenyl, alkynyl, aryl, heteroaryl, an acyl group, a carbonyl group, a carboxylic acid group, an ether group, an ester group, a nitrile group, an isonitrile group, a sulfanyl group, a sulfinyl group, a sulfonyl group, a phosphino group, and combinations thereof.


It is to be understood that when a molecular fragment is described as being a substituent or otherwise attached to another moiety, its name may be written as if it were a fragment (e.g. phenyl, phenylene, naphthyl, dibenzofuryl) or as if it were the whole molecule (e.g. benzene, naphthalene, dibenzofuran). As used herein, these different ways of designating a substituent or attached fragment are considered to be equivalent.


In the compounds mentioned in this disclosure, the hydrogen atoms can be partially or fully replaced by deuterium. Other atoms such as carbon and nitrogen, can also be replaced by their other stable isotopes. The replacement by other stable isotopes in the compounds may be preferred due to its enhancements of device efficiency and stability.


In the compounds mentioned in this disclosure, multiple substitutions refer to a range that includes a double substitution, up to the maximum available substitutions.


In the compounds mentioned in this disclosure, the expression that adjacent substituents are optionally joined to form a ring is intended to be taken to mean that two radicals are linked to each other by a chemical bond. This is illustrated by the following scheme:




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Furthermore, the expression that adjacent substituents are optionally joined to form a ring is also intended to be taken to mean that in the case where one of the two radicals represents hydrogen, the second radical is bonded at a position to which the hydrogen atom was bonded, with formation of a ring. This is illustrated by the following scheme:




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According to an embodiment of the present invention, a metal complex having a partial structure represented by Formula 1 is disclosed:




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Wherein

    • Cy is a substituted or unsubstituted aryl or heteroaryl group having 5 to 24 aromatic ring atoms;
    • Cy is bonded to M via a carbon atom;
    • M is selected from the group consisting of Cu, Ag, Au, Ru, Rh, Pd, Os, Ir, and Pt;
    • X is selected from the group consisting of O, S, and Se;
    • X1, X2, X3, and X4 are independently selected from N or CR;
    • at least one of X1, X2, X3, and X4 is N;
    • wherein R is selected from the group consisting of hydrogen, deuterium, halogen, a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted cycloalkyl group having 3 to 20 ring carbon atoms, a substituted or unsubstituted heteroalkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted arylalkyl group having 7 to 30 carbon atoms, a substituted or unsubstituted alkoxy group having 1 to 20 carbon atoms, a substituted or unsubstituted aryloxy group having 6 to 30 carbon atoms, a substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, a substituted or unsubstituted heteroaryl group having 3 to 30 carbon atoms, a substituted or unsubstituted alkylsilyl group having 3 to 20 carbon atoms, a substituted or unsubstituted arylsilyl group having 6 to 20 carbon atoms, a substituted or unsubstituted amino group having 0 to 20 carbon atoms, an acyl group, a carbonyl group, a carboxylic acid group, an ester group, a nitrile group, an isonitrile group, a sulfanyl group, a sulfinyl group, a sulfonyl group, a phosphino group, and combinations thereof;
    • two adjacent substituents are optionally joined to form a ring;


In this embodiment, when Cy is a substituted aryl or heteroaryl group having 5 to 24 aromatic ring atoms, it means that a mono-substitution, a di-substitution, or up to the maximum available substitutions may be present on the carbocyclic or heterocyclic group having 5 to 24 aromatic ring atoms. The above substitutions may each independently be selected from the group consisting of hydrogen, deuterium, halogen, a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted cycloalkyl group having 3 to 20 ring carbon atoms, a substituted or unsubstituted heteroalkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted arylalkyl group having 7 to 30 carbon atoms, a substituted or unsubstituted alkoxy group having 1 to 20 carbon atoms, a substituted or unsubstituted aryloxy group having 6 to 30 carbon atoms, a substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, a substituted or unsubstituted heteroaryl group having 3 to 30 carbon atoms, a substituted or unsubstituted alkylsilyl group having 3 to 20 carbon atoms, a substituted or unsubstituted arylsilyl group having 6 to 20 carbon atoms, a substituted or unsubstituted amino group having 0 to 20 carbon atoms, an acyl group, a carbonyl group, a carboxylic acid group, an ester group, a nitrile group, an isonitrile group, a sulfanyl group, a sulfinyl group, a sulfonyl group, a phosphino group, and combinations thereof.


In one embodiment, wherein the metal is selected from the group consisting of Pt and Ir.


In one embodiment, wherein Cy has a partial structure selected from the group consisting of:




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In this embodiment, Cy has a partial structure selected from the above group, it means that Cy comprises a substituted or unsubstituted group selected from the above group. When Cy is the substituted group, it means that there may be a mono-substitution, a di-substitution, or up to the maximum available substitution on the group. The above substitutions may each independently be selected from the group consisting of hydrogen, deuterium, halogen, a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted cycloalkyl group having 3 to 20 ring carbon atoms, a substituted or unsubstituted heteroalkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted arylalkyl group having 7 to 30 carbon atoms, a substituted or unsubstituted alkoxy group having 1 to 20 carbon atoms, a substituted or unsubstituted aryloxy group having 6 to 30 carbon atoms, a substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, a substituted or unsubstituted heteroaryl group having 3 to 30 carbon atoms, a substituted or unsubstituted alkylsilyl group having 3 to 20 carbon atoms, a substituted or unsubstituted arylsilyl group having 6 to 20 carbon atoms, a substituted or unsubstituted amino group having 0 to 20 carbon atoms, an acyl group, a carbonyl group, a carboxylic acid group, an ester group, a nitrile group, an isonitrile group, a sulfanyl group, a sulfinyl group, a sulfonyl group, a phosphino group, and combinations thereof.


In one embodiment, wherein the complex has the formula of M(La)m(Lb)n(Lc)q, wherein Lb and Lc are the second and third ligand coordinating to M, Lb and Lc can be the same of different;

    • La, Lb, and Lc can be optionally joined to form a tetradentate or hexadentate ligand;
    • wherein m is 1, 2, or 3, n is 0, 1, or 2, q is 0, 1, or 2; m+n+q is the oxidation state of M.


In one embodiment, wherein La is independently selected from the group consisting of:




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Wherein Lb and Lc are independently selected from the group consisting of:




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Wherein

    • Y is selected from the group consisting of O, S, Se, NR′, CR″R′″;
    • Y1, Y2, Y3, and Y4 are each independently selected from the group consisting of N and CR″″;
    • R1, R2, R3, Ra, Rb, and Rc can represent mono, di, tri, or tetra substitution or no substitution;
    • R′, R″, R′″, R″″, R1, R2, R3, Ra, Rb, and Rc are each independently selected from the group consisting of hydrogen, deuterium, halogen, a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted cycloalkyl group having 3 to 20 ring carbon atoms, a substituted or unsubstituted heteroalkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted arylalkyl group having 7 to 30 carbon atoms, a substituted or unsubstituted alkoxy group having 1 to 20 carbon atoms, a substituted or unsubstituted aryloxy group having 6 to 30 carbon atoms, a substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, a substituted or unsubstituted heteroaryl group having 3 to 30 carbon atoms, a substituted or unsubstituted alkylsilyl group having 3 to 20 carbon atoms, a substituted or unsubstituted arylsilyl group having 6 to 20 carbon atoms, a substituted or unsubstituted amino group having 0 to 20 carbon atoms, an acyl group, a carbonyl group, a carboxylic acid group, an ester group, a nitrile group, an isonitrile group, a sulfanyl group, a sulfinyl group, a sulfonyl group, a phosphino group, and combinations thereof;
    • Xb is selected from the group consisting of O, S, Se, NRN1, and CRC1RC2;
    • RN1, RC1 and RC2 are each independently selected from the group consisting of hydrogen, deuterium, halogen, a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted cycloalkyl group having 3 to 20 ring carbon atoms, a substituted or unsubstituted heteroalkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted arylalkyl group having 7 to 30 carbon atoms, a substituted or unsubstituted alkoxy group having 1 to 20 carbon atoms, a substituted or unsubstituted aryloxy group having 6 to 30 carbon atoms, a substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, a substituted or unsubstituted heteroaryl group having 3 to 30 carbon atoms, a substituted or unsubstituted alkylsilyl group having 3 to 20 carbon atoms, a substituted or unsubstituted arylsilyl group having 6 to 20 carbon atoms, a substituted or unsubstituted amino group having 0 to 20 carbon atoms, an acyl group, a carbonyl group, a carboxylic acid group, an ester group, a nitrile group, an isonitrile group, a sulfanyl group, a sulfinyl group, a sulfonyl group, a phosphino group, and combinations thereof;
    • two adjacent substituents are optionally joined to form a ring.


In one embodiment, wherein La has the structure represented by Formula 2:




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    • wherein X1, X2, X3, X4, X, R21, R22, and R23 of Formula 2 are each selected from the group or the atom shown in the following table:























Number
X1
X2
X3
X4
X
R21
R22
R23







La1.
N
CH
CH
CH
S
H
H
H


La2.
N
CH
CH
CH
S
CH3
H
H


La3.
N
CH
CH
CH
S
H
CH3
H


La4.
N
CH
CH
CH
S
CH3
H
CH3


La5.
N
CH
CH
CH
S
CD3
H
H


La6.
N
CH
CH
CH
S
H
CD3
H


La7.
N
CH
CH
CH
S
CH3
H
CD3


La8.
N
CCH3
CH
CH
S
H
H
H





La9.
N


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CH
CH
S
H
H
H





La10.
N


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CH
CH
S
H
H
H





La11.
N


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CH
CH
S
H
H
H





La12.
N


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CH
CH
S
H
H
H





La13.
N


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CH
CH
S
H
H
H





La14.
N


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CH
CH
S
H
H
H





La15.
N


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CH
CH
S
H
H
H





La16.
N


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CH
CH
S
H
H
H





La17.
N
CCD3
CH
CH
S
H
H
H





La18.
N


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CH
CH
S
H
H
H





La19.
N


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CH
CH
S
H
H
H





La20.
N


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CH
CH
S
H
H
H





La21.
N


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CH
CH
S
H
H
H





La22.
N


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CH
CH
S
H
H
H





La23.
N


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CH
CH
S
H
H
H





La24.
N


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CH
CH
S
H
H
H





La25.
N


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CH
CH
S
H
H
H





La26.
N
CCH3
CH
CH
S
CH3
H
H





La27.
N


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CH
CH
S
CH3
H
H





La28.
N


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CH
CH
S
CH3
H
H





La29.
N


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CH
CH
S
CH3
H
H





La30.
N


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CH
CH
S
CH3
H
H





La31.
N


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CH
CH
S
CH3
H
H





La32.
N


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CH
CH
S
CH3
H
H





La33.
N


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CH
CH
S
CH3
H
H





La34.
N


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CH
CH
S
CH3
H
H





La35.
N
CCD3
CH
CH
S
CD
H
H





La36.
N


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CH
CH
S
CD3
H
H





La37.
N


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CH
CH
S
CD3
H
H





La38.
N


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CH
CH
S
CD3
H
H





La39.
N


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CH
CH
S
CD3
H
H





La40.
N


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CH
CH
S
CD3
H
H





La41.
N


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CH
CH
S
CD3
H
H





La42.
N


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CH
CH
S
CD3
H
H





La43.
N


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CH
CH
S
CD3
H
H





La44.
N
CCH3
CH
CH
S
CH3
H
CH3





La45.
N


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CH
CH
S
CH3
H
CH3





La46.
N


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CH
CH
S
CH3
H
CH3





La47.
N


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CH
CH
S
CH3
H
CH3





La48.
N


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CH
CH
S
CH3
H
CH3





La49.
N


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CH
CH
S
CH3
H
CH3





La50.
N


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CH
CH
S
CH3
H
CH3





La51.
N


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CH
CH
S
CH3
H
CH3





La52.
N


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CH
CH
S
CH3
H
CH3





La53.
N
CCD3
CH
CH
S
CD3
H
CD3





La54.
N


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CH
CH
S
CD3
H
CD3





La55.
N


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CH
CH
S
CD3
H
CD3





La56.
N


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CH
CH
S
CD3
H
CD3





La57.
N


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CH
CH
S
CD3
H
CD3





La58.
N


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CH
CH
S
CD3
H
CD3





La59.
N


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CH
CH
S
CD3
H
CD3





La60.
N


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CH
CH
S
CD3
H
CD3





La61.
N


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CH
CH
S
CD3
H
CD3





La62.
N
CH
CCH3
CH
S
H
H
H





La63.
N
CH


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CH
S
H
H
H





La64.
N
CH


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CH
S
H
H
H





La65.
N
CH


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CH
S
H
H
H





La66.
N
CH


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CH
S
H
H
H





La67.
N
CH


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CH
S
H
H
H





La68.
N
CH


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CH
S
H
H
H





La69.
N
CH


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CH
S
H
H
H





La70.
N
CH


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CH
S
H
H
H





La71.
N
CH
CCD3
CH
S
H
H
H





La72.
N
CH


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CH
S
H
H
H





La73.
N
CH


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CH
S
H
H
H





La74.
N
CH


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CH
S
H
H
H





La75.
N
CH


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CH
S
H
H
H





La76.
N
CH


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CH
S
H
H
H





La77.
N
CH


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CH
S
H
H
H





La78.
N
CH


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CH
S
H
H
H





La79.
N
CH


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CH
S
H
H
H





La80.
N
CH
CCH3
CH
S
CH3
H
H





La81.
N
CH


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CH
S
CH3
H
H





La82.
N
CH


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CH
S
CH3
H
H





La83.
N
CH


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CH
S
CH3
H
H





La84.
N
CH


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CH
S
CH3
H
H





La85.
N
CH


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CH
S
CH3
H
H





La86.
N
CH


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CH
S
CH3
H
H





La87.
N
CH


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CH
S
CH3
H
H





La88.
N
CH


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CH
S
CH3
H
H





La89.
N
CH
CCD3
CH
S
CD3
H
H





La90.
N
CH


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CH
S
CD3
H
H





La91.
N
CH


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CH
S
CD3
H
H





La92.
N
CH


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CH
S
CD3
H
H





La93.
N
CH


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CH
S
CD3
H
H





La94.
N
CH


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CH
S
CD3
H
H





La95.
N
CH


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CH
S
CD3
H
H





La96.
N
CH


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CH
S
CD3
H
H





La97.
N
CH


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CH
S
CD3
H
H





La98.
N
CH
CCH3
CH
S
CH3
H
CH3





La99.
N
CH


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CH
S
CH3
H
CH3





La100.
N
CH


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CH
S
CH3
H
CH3





La101.
N
CH


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CH
S
CH3
H
CH3





La102.
N
CH


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CH
S
CH3
H
CH3





La103.
N
CH


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CH
S
CH3
H
CH3





La104.
N
CH


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CH
S
CH3
H
CH3





La105.
N
CH


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CH
S
CH3
H
CH3





La106.
N
CH


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CH
S
CH3
H
CH3





La107.
N
CH
CCD3
CH
S
CD3
H
CD3





La108.
N
CH


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CH
S
CD3
H
CD3





La109.
N
CH


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CH
S
CD3
H
CD3





La110.
N
CH


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CH
S
CD3
H
CD3





La111.
N
CH


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CH
S
CD3
H
CD3





la112.
N
CH


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CH
S
CD3
H
CD3





La113.
N
CH


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CH
S
CD3
H
CD3





La114.
N
CH


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CH
S
CD3
H
CD3





La115.
N
CH


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CH
S
CD3
H
CD3





La116.
N
CH
CH
CH
Se
H
H
H


La117.
N
CH
CH
CH
Se
CH3
H
H


La118.
N
CH
CH
CH
Se
H
CH3
H


La119.
N
CH
CH
CH
Se
CH3
H
CH3


La120.
N
CH
CH
CH
Se
CD3
H
H


La121.
N
CH
CH
CH
Se
H
CD3
H


La122.
N
CH
CH
CH
Se
CH3
H
CD3


La123.
N
CCH3
CH
CH
Se
H
H
H





La124.
N


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CH
CH
Se
H
H
H





La125.
N


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CH
CH
Se
H
H
H





La126.
N


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CH
CH
Se
H
H
H





La127.
N


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CH
CH
Se
H
H
H





La128.
N


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CH
CH
Se
H
H
H





La129.
N


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CH
CH
Se
H
H
H





La130.
N


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CH
CH
Se
H
H
H





La131.
N


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CH
CH
Se
H
H
H





La132.
N
CCD3
CH
CH
Se
H
H
H





La133.
N


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CH
CH
Se
H
H
H





La134.
N


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CH
CH
Se
H
H
H





La135.
N


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CH
CH
Se
H
H
H





La136.
N


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CH
CH
Se
H
H
H





La137.
N


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CH
CH
Se
H
H
H





La138.
N


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CH
CH
Se
H
H
H





La139.
N


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CH
CH
Se
H
H
H





La140.
N


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CH
CH
Se
H
H
H





La141.
N
CCH3
H
H
Se
CH3
H
H





La142.
N


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CH
CH
Se
CH3
H
H





La143.
N


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CH
CH
Se
CH3
H
H





La144.
N


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CH
CH
Se
CH3
H
H





La145.
N


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CH
CH
Se
CH3
H
H





La146.
N


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CH
CH
Se
CH3
H
H





La147.
N


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CH
CH
Se
CH3
H
H





La148.
N


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CH
CH
Se
CH3
H
H





La149.
N


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CH
CH
Se
CH3
H
H





La150.
N
CCD3
CH
CH
Se
CD3
H
H





La151.
N


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CH
CH
Se
CD3
H
H





La152.
N


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CH
CH
Se
CD3
H
H





La153.
N


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CH
CH
Se
CD3
H
H





La154.
N


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CH
CH
Se
CD3
H
H





La155.
N


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CH
CH
Se
CD3
H
H





La156.
N


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CH
CH
Se
CD3
H
H





La157.
N


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CH
CH
Se
CD3
H
H





La158.
N


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CH
CH
Se
CD3
H
H





La159.
N
CCH3
CH
CH
Se
CH3
H
CH3





La160.
N


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CH
CH
Se
CH3
H
CH3





La161.
N


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CH
CH
Se
CH3
H
CH3





La162.
N


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CH
CH
Se
CH3
H
CH3





La163.
N


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CH
CH
Se
CH3
H
CH3





La164.
N


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CH
CH
Se
CH3
H
CH3





La165.
N


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CH
CH
Se
CH3
H
CH3





La166.
N


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CH
CH
Se
CH3
H
CH3





La167.
N


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CH
CH
Se
CH3
H
CH3





La168.
N
CCD3
CH
CH
Se
CD3
H
CD3





La169.
N


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CH
CH
Se
CD3
H
CD3





La170.
N


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CH
CH
Se
CD3
H
CD3





La171.
N


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CH
CH
Se
CD3
H
CD3





La172.
N


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CH
CH
Se
CD3
H
CD3





La173.
N


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CH
CH
Se
CD3
H
CD3





La174.
N


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CH
CH
Se
CD3
H
CD3





La175.
N


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CH
CH
Se
CD3
H
CD3





La176.
N


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CH
CH
Se
CD3
H
CD3





La177.
N
CH
CCH3
CH
Se
H
H
H





La178.
N
CH


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CH
Se
H
H
H





La179.
N
CH


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CH
Se
H
H
H





La180.
N
CH


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CH
Se
H
H
H





La181.
N
CH


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CH
Se
H
H
H





La182.
N
CH


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CH
Se
H
H
H





La183.
N
CH


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CH
Se
H
H
H





La184.
N
CH


embedded image


CH
Se
H
H
H





La185.
N
CH


embedded image


CH
Se
H
H
H





La186.
N
CH
CCD3
CH
Se
H
H
H





La187.
N
CH


embedded image


CH
Se
H
H
H





La188.
N
CH


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CH
Se
H
H
H





La189.
N
CH


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CH
Se
H
H
H





La190.
N
CH


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CH
Se
H
H
H





La191.
N
CH


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CH
Se
H
H
H





La192.
N
CH


embedded image


CH
Se
H
H
H





La193.
N
CH


embedded image


CH
Se
H
H
H





La194.
N
CH


embedded image


CH
Se
H
H
H





La195.
N
CH
CCH3
CH
Se
CH3
H
H





La196.
N
CH


embedded image


CH
Se
CH3
H
H





La197.
N
CH


embedded image


CH
Se
CH3
H
H





La198.
N
CH


embedded image


CH
Se
CH3
H
H





La199.
N
CH


embedded image


CH
Se
CH3
H
H





La200.
N
CH


embedded image


CH
Se
CH3
H
H





La201.
N
CH


embedded image


CH
Se
CH3
H
H





La202.
N
CH


embedded image


CH
Se
CH3
H
H





La203.
N
CH


embedded image


CH
Se
CH3
H
H





La204.
N
CH
CCD3
CH
Se
CD3
H
H





La205.
N
CH


embedded image


CH
Se
CD3
H
H





La206.
N
CH


embedded image


CH
Se
CD3
H
H





La207.
N
CH


embedded image


CH
Se
CD3
H
H





La208.
N
CH


embedded image


CH
Se
CD3
H
H





La209.
N
CH


embedded image


CH
Se
CD3
H
H





La210.
N
CH


embedded image


CH
Se
CD3
H
H





La211.
N
CH


embedded image


CH
Se
CD3
H
H





La212.
N
CH


embedded image


CH
Se
CD3
H
H





La213.
N
CH
CCH3
CH
Se
CH3
H
CH3





La214.
N
CH


embedded image


CH
Se
CH3
H
CH3





La215.
N
CH


embedded image


CH
Se
CH3
H
CH3





La216.
N
CH


embedded image


CH
Se
CH3
H
CH3





La217.
N
CH


embedded image


CH
Se
CH3
H
CH3





La218.
N
CH


embedded image


CH
Se
CH3
H
CH3





La219.
N
CH


embedded image


CH
Se
CH3
H
CH3





La220.
N
CH


embedded image


CH
Se
CH3
H
CH3





La221.
N
CH


embedded image


CH
Se
CH3
H
CH3





La222.
N
CH
CCD3
CH
Se
CD3
H
CD3





La223.
N
CH


embedded image


CH
Se
CD3
H
CD3





La224.
N
CH


embedded image


CH
Se
CD3
H
CD3





La225.
N
CH


embedded image


CH
Se
CD3
H
CD3





La226.
N
CH


embedded image


CH
Se
CD3
H
CD3





La227.
N
CH


embedded image


CH
Se
CD3
H
CD3





La228.
N
CH


embedded image


CH
Se
CD3
H
CD3





La229.
N
CH


embedded image


CH
Se
CD3
H
CD3





La230.
N
CH


embedded image


CH
Se
CD3
H
CD3





La231.
CH
N
CH
CH
S
H
H
H


La232.
CH
N
CH
CH
S
CH3
H
H


La233.
CH
N
CH
CH
S
H
CH3
H


La234.
CH
N
CH
CH
S
CH3
H
CH3


La235.
CH
N
CH
CH
S
CD3
H
H


La236.
CH
N
CH
CH
S
H
CD3
H


La237.
CH
N
CH
CH
S
CH3
H
CD3


La238.
CCH3
N
CH
CH
S
H
H
H





La239.


embedded image


N
CH
CH
S
H
H
H





La240.


embedded image


N
CH
CH
S
H
H
H





La241.


embedded image


N
CH
CH
S
H
H
H





La242.


embedded image


N
CH
CH
S
H
H
H





La243.


embedded image


N
CH
CH
S
H
H
H





La244.


embedded image


N
CH
CH
S
H
H
H





La245.


embedded image


N
CH
CH
S
H
H
H





La246.


embedded image


N
CH
CH
S
H
H
H





La247.
CCD3
N
CH
CH
S
H
H
H





La248.


embedded image


N
CH
CH
S
H
H
H





La249.


embedded image


N
CH
CH
S
H
H
H





La250.


embedded image


N
CH
CH
S
H
H
H





La251.


embedded image


N
CH
CH
S
H
H
H





La252.


embedded image


N
CH
CH
S
H
H
H





La253.


embedded image


N
CH
CH
S
H
H
H





La254.


embedded image


N
CH
CH
S
H
H
H





La255.


embedded image


N
CH
CH
S
H
H
H





La256.
CCH3
N
CH
CH
S
CH3
H
H





La257.


embedded image


N
CH
CH
S
CH3
H
H





La258.


embedded image


N
CH
CH
S
CH3
H
H





La259.


embedded image


N
CH
CH
S
CH3
H
H





La260.


embedded image


N
CH
CH
S
CH3
H
H





La261.


embedded image


N
CH
CH
S
CH3
H
H





La262.


embedded image


N
CH
CH
S
CH3
H
H





La263.


embedded image


N
CH
CH
S
CH3
H
H





La264.


embedded image


N
CH
CH
S
CH3
H
H





La265.
CCD3
N
CH
CH
S
CD3
H
H





La266.


embedded image


N
CH
CH
S
CD3
H
H





La267.


embedded image


N
CH
CH
S
CD3
H
H





La268.


embedded image


N
CH
CH
S
CD3
H
H





La269.


embedded image


N
CH
CH
S
CD3
H
H





La270.


embedded image


N
CH
CH
S
CD3
H
H





La271.


embedded image


N
CH
CH
S
CD3
H
H





La272.


embedded image


N
CH
CH
S
CD3
H
H





La273.


embedded image


N
CH
CH
S
CD3
H
H





La274.
CCH3
N
CH
CH
S
CH3
H
CH3





La275.


embedded image


N
CH
CH
S
CH3
H
CH3





La276.


embedded image


N
CH
CH
S
CH3
H
CH3





La277.


embedded image


N
CH
CH
S
CH3
H
CH3





La278.


embedded image


N
CH
CH
S
CH3
H
CH3





La279.


embedded image


N
CH
CH
S
CH3
H
CH3





La280.


embedded image


N
CH
CH
S
CH3
H
CH3





La281.


embedded image


N
CH
CH
S
CH3
H
CH3





La282.


embedded image


N
CH
CH
S
CH3
H
CH3





La283.
CCD3
N
CH
CH
S
CD3
H
CD3





La284.


embedded image


N
CH
CH
S
CD3
H
CD3





La285.


embedded image


N
CH
CH
S
CD3
H
CD3





La286.


embedded image


N
CH
CH
S
CD3
H
CD3





La287.


embedded image


N
CH
CH
S
CD3
H
CD3





La288.


embedded image


N
CH
CH
S
CD3
H
CD3





La289.


embedded image


N
CH
CH
S
CD3
H
CD3





La290.


embedded image


N
CH
CH
S
CD3
H
CD3





La291.


embedded image


N
CH
CH
S
CD3
H
CD3





La292.
CH
N
CCH3
CH
S
H
H
H





La293.
CH
N


embedded image


CH
S
H
H
H





La294.
CH
N


embedded image


CH
S
H
H
H





La295.
CH
N


embedded image


CH
S
H
H
H





La296.
CH
N


embedded image


CH
S
H
H
H





La297.
CH
N


embedded image


CH
S
H
H
H





La298.
CH
N


embedded image


CH
S
H
H
H





La299.
CH
N


embedded image


CH
S
H
H
H





La300.
CH
N


embedded image


CH
S
H
H
H





La301.
CH
N
CCD3
CH
S
H
H
H





La302.
CH
N


embedded image


CH
S
H
H
H





La303.
CH
N


embedded image


CH
S
H
H
H





La304.
CH
N


embedded image


CH
S
H
H
H





La305.
CH
N


embedded image


CH
S
H
H
H





La306.
CH
N


embedded image


CH
S
H
H
H





La307.
CH
N


embedded image


CH
S
H
H
H





La308.
CH
N


embedded image


CH
S
H
H
H





La309.
CH
N


embedded image


CH
S
H
H
H





La310.
CH
N
CCH3
CH
S
CH3
H
H





La311.
CH
N


embedded image


CH
S
CH3
H
H





La312.
CH
N


embedded image


CH
S
CH3
H
H





La313.
CH
N


embedded image


CH
S
CH3
H
H





La314.
CH
N


embedded image


CH
S
CH3
H
H





La315.
CH
N


embedded image


CH
S
CH3
H
H





La316.
CH
N


embedded image


CH
S
CH3
H
H





La317.
CH
N


embedded image


CH
S
CH3
H
H





La318.
CH
N


embedded image


CH
S
CH3
H
H





La319.
CH
N
CCD3
CH
S
CD3
H
H





La320.
CH
N


embedded image


CH
S
CD3
H
H





La321.
CH
N


embedded image


CH
S
CD3
H
H





La322.
CH
N


embedded image


CH
S
CD3
H
H





La323.
CH
N


embedded image


CH
S
CD3
H
H





La324.
CH
N


embedded image


CH
S
CD3
H
H





La325.
CH
N


embedded image


CH
S
CD3
H
H





La326.
CH
N


embedded image


CH
S
CD3
H
H





La327.
CH
N


embedded image


CH
S
CD3
H
H





La328.
CH
N
CCH3
CH
S
CH3
H
CH3





La329.
CH
N


embedded image


CH
S
CH3
H
CH3





La330.
CH
N


embedded image


CH
S
CH3
H
CH3





La331.
CH
N


embedded image


CH
S
CH3
H
CH3





La332.
CH
N


embedded image


CH
S
CH3
H
CH3





La333.
CH
N


embedded image


CH
S
CH3
H
CH3





La334.
CH
N


embedded image


CH
S
CH3
H
CH3





La335.
CH
N


embedded image


CH
S
CH3
H
CH3





La336.
CH
N


embedded image


CH
S
CH3
H
CH3





La337.
CH
N
CCD3
CH
S
CD3
H
CD3





La338.
CH
N


embedded image


CH
S
CD3
H
CD3





La339.
CH
N


embedded image


CH
S
CD3
H
CD3





La340.
CH
N


embedded image


CH
S
CD3
H
CD3





La341.
CH
N


embedded image


CH
S
CD3
H
CD3





La342.
CH
N


embedded image


CH
S
CD3
H
CD3





La343.
CH
N


embedded image


CH
S
CD3
H
CD3





La344.
CH
N


embedded image


CH
S
CD3
H
CD3





La345.
CH
N


embedded image


CH
S
CD3
H
CD3





La346.
CH
N
CH
CH
Se
H
H
H


La347.
CH
N
CH
CH
Se
CH3
H
H


La348.
CH
N
CH
CH
Se
H
CH3
H


La349.
CH
N
CH
CH
Se
CH3
H
CH3


La350.
CH
N
CH
CH
Se
CD3
H
H


La351.
CH
N
CH
CH
Se
H
CD3
H


La352.
CH
N
CH
CH
Se
CH3
H
CD3


La353.
CCH3
N
CH
CH
Se
H
H
H





La354.


embedded image


N
CH
CH
Se
H
H
H





La355.


embedded image


N
CH
CH
Se
H
H
H





La356.


embedded image


N
CH
CH
Se
H
H
H





La357.


embedded image


N
CH
CH
Se
H
H
H





La358.


embedded image


N
CH
CH
Se
H
H
H





La359.


embedded image


N
CH
CH
Se
H
H
H





La360.


embedded image


N
CH
CH
Se
H
H
H





La361.


embedded image


N
CH
CH
Se
H
H
H





La362.
CCD3
N
CH
CH
Se
H
H
H





La363.


embedded image


N
CH
CH
Se
H
H
H





La364.


embedded image


N
CH
CH
Se
H
H
H





La365.


embedded image


N
CH
CH
Se
H
H
H





La366.


embedded image


N
CH
CH
Se
H
H
H





La367.


embedded image


N
CH
CH
Se
H
H
H





La368.


embedded image


N
CH
CH
Se
H
H
H





La369.


embedded image


N
CH
CH
Se
H
H
H





La370.


embedded image


N
CH
CH
Se
H
H
H





La371.
CCH3
N
CH
CH
Se
CH3
H
H





La372.


embedded image


N
CH
CH
Se
CH3
H
H





La373.


embedded image


N
CH
CH
Se
CH3
H
H





La374.


embedded image


N
CH
CH
Se
CH3
H
H





La375.


embedded image


N
CH
CH
Se
CH3
H
H





La376.


embedded image


N
CH
CH
Se
CH3
H
H





La377.


embedded image


N
CH
CH
Se
CH3
H
H





La378.


embedded image


N
CH
CH
Se
CH3
H
H





La379.


embedded image


N
CH
CH
Se
CH3
H
H





La380.
CCD3
N
CH
CH
Se
CD3
H
H





La381.


embedded image


N
CH
CH
Se
CD3
H
H





La382.


embedded image


N
CH
CH
Se
CD3
H
H





La383.


embedded image


N
CH
CH
Se
CD3
H
H





La384.


embedded image


N
CH
CH
Se
CD3
H
H





La385.


embedded image


N
CH
CH
Se
CD3
H
H





La386.


embedded image


N
CH
CH
Se
CD3
H
H





La387.


embedded image


N
CH
CH
Se
CD3
H
H





La388.


embedded image


N
CH
CH
Se
CD3
H
H





La389.
CCH3
N
CH
CH
Se
CH3
H
CH3





La390.


embedded image


N
CH
CH
Se
CH3
H
CH3





La391.


embedded image


N
CH
CH
Se
CH3
H
CH3





La392.


embedded image


N
CH
CH
Se
CH3
H
CH3





La393.


embedded image


N
CH
CH
Se
CH3
H
CH3





La394.


embedded image


N
CH
CH
Se
CH3
H
CH3





La395.


embedded image


N
CH
CH
Se
CH3
H
CH3





La396.


embedded image


N
CH
CH
Se
CH3
H
CH3





La397.


embedded image


N
CH
CH
Se
CH3
H
CH3





La398.
CCD3
N
CH
CH
Se
CD3
H
CD3





La399.


embedded image


N
CH
CH
Se
CD3
H
CD3





La400.


embedded image


N
CH
CH
Se
CD3
H
CD3





La401.


embedded image


N
CH
CH
Se
CD3
H
CD3





La402.


embedded image


N
CH
CH
Se
CD3
H
CD3





La403.


embedded image


N
CH
CH
Se
CD3
H
CD3





La404.


embedded image


N
CH
CH
Se
CD3
H
CD3





La405.


embedded image


N
CH
CH
Se
CD3
H
CD3





La406.


embedded image


N
CH
CH
Se
CD3
H
CD3





La407.
CH
N
CCH3
CH
Se
H
H
H





La408.
CH
N


embedded image


CH
Se
H
H
H





La409.
CH
N


embedded image


CH
Se
H
H
H





La410.
CH
N


embedded image


CH
Se
H
H
H





La411.
CH
N


embedded image


CH
Se
H
H
H





La412.
CH
N


embedded image


CH
Se
H
H
H





La413.
CH
N


embedded image


CH
Se
H
H
H





La414.
CH
N


embedded image


CH
Se
H
H
H





La415.
CH
N


embedded image


CH
Se
H
H
H





La416.
CH
N
CCD3
CH
Se
H
H
H





La417.
CH
N


embedded image


CH
Se
H
H
H





La418.
CH
N


embedded image


CH
Se
H
H
H





La419.
CH
N


embedded image


CH
Se
H
H
H





La420.
CH
N


embedded image


CH
Se
H
H
H





La421.
CH
N


embedded image


CH
Se
H
H
H





La422.
CH
N


embedded image


CH
Se
H
H
H





L423.
CH
N


embedded image


CH
Se
H
H
H





La424.
CH
N


embedded image


CH
Se
H
H
H





La425.
CH
N
CCH3
CH
Se
CH3
H
H





La426.
CH
N


embedded image


CH
Se
CH3
H
H





La427.
CH
N


embedded image


CH
Se
CH3
H
H





La428.
CH
N


embedded image


CH
Se
CH3
H
H





La429.
CH
N


embedded image


CH
Se
CH3
H
H





La430.
CH
N


embedded image


CH
Se
CH3
H
H





La431.
CH
N


embedded image


CH
Se
CH3
H
H





La432.
CH
N


embedded image


CH
Se
CH3
H
H





La433.
CH
N


embedded image


CH
Se
CH3
H
H





La434.
CH
N
CCD3
CH
Se
CD3
H
H





La435.
CH
N


embedded image


CH
Se
CD3
H
H





La436.
CH
N


embedded image


CH
Se
CD3
H
H





La437.
CH
N


embedded image


CH
Se
CD3
H
H





La438.
CH
N


embedded image


CH
Se
CD3
H
H





La439.
CH
N


embedded image


CH
Se
CD3
H
H





La440.
CH
N


embedded image


CH
Se
CD3
H
H





La441.
CH
N


embedded image


CH
Se
CD3
H
H





La442.
CH
N


embedded image


CH
Se
CD3
H
H





La443.
CH
N
CCH3
CH
Se
CH3
H
CH3





La444.
CH
N


embedded image


CH
Se
CH3
H
CH3





La445.
CH
N


embedded image


CH
Se
CH3
H
CH3





La446.
CH
N


embedded image


CH
Se
CH3
H
CH3





La447.
CH
N


embedded image


CH
Se
CH3
H
CH3





La448.
CH
N


embedded image


CH
Se
CH3
H
CH3





La449.
CH
N


embedded image


CH
Se
CH3
H
CH3





La450.
CH
N


embedded image


CH
Se
CH3
H
CH3





La451.
CH
N


embedded image


CH
Se
CH3
H
CH3





La452.
CH
N
CCD3
CH
Se
CD3
H
CD3





La453.
CH
N


embedded image


CH
Se
CD3
H
CD3





La454.
CH
N


embedded image


CH
Se
CD3
H
CD3





La455.
CH
N


embedded image


CH
Se
CD3
H
CD3





La456.
CH
N


embedded image


CH
Se
CD3
H
CD3





La457.
CH
N


embedded image


CH
Se
CD3
H
CD3





La458.
CH
N


embedded image


CH
Se
CD3
H
CD3





La459.
CH
N


embedded image


CH
Se
CD3
H
CD3





La460.
CH
N


embedded image


CH
Se
CD3
H
CD3





La461.
CH
CH
N
CH
S
H
H
H


La462.
CH
CH
N
CH
S
CH3
H
H


La463.
CH
CH
N
CH
S
H
CH3
H


La464.
CH
CH
N
CH
S
CH3
H
CH3


La465.
CH
CH
N
CH
S
CD3
H
H


La466.
CH
CH
N
CH
S
H
CD3
H


La467.
CH
CH
N
CH
S
CH3
H
CD3


La468.
CH
OCH3
N
CH
S
H
H
H





La469.
CH


embedded image


N
CH
S
H
H
H





La470.
CH


embedded image


N
CH
S
H
H
H





La471.
CH


embedded image


N
CH
S
H
H
H





La472.
CH


embedded image


N
CH
S
H
H
H





La473.
CH


embedded image


N
CH
S
H
H
H





La474.
CH


embedded image


N
CH
S
H
H
H





La475.
CH


embedded image


N
CH
S
H
H
H





La476.
CH


embedded image


N
CH
S
H
H
H





La477.
CH
CCD3
N
CH
S
H
H
H





La478.
CH


embedded image


N
CH
S
H
H
H





La479.
CH


embedded image


N
CH
S
H
H
H





La480.
CH


embedded image


N
CH
S
H
H
H





La481.
CH


embedded image


N
CH
S
H
H
H





La482.
CH


embedded image


N
CH
S
H
H
H





La483.
CH


embedded image


N
CH
S
H
H
H





La484.
CH


embedded image


N
CH
S
H
H
H





La485.
CH


embedded image


N
CH
S
H
H
H





La486.
CH
CCH3
N
CH
S
CH3
H
H





La487.
CH


embedded image


N
CH
S
CH3
H
H





La488.
CH


embedded image


N
CH
S
CH3
H
H





La489.
CH


embedded image


N
CH
S
CH3
H
H





La490.
CH


embedded image


N
CH
S
CH3
H
H





La491.
CH


embedded image


N
CH
S
CH3
H
H





La492.
CH


embedded image


N
CH
S
CH3
H
H





La493.
CH


embedded image


N
CH
S
CH3
H
H





La494.
CH


embedded image


N
CH
S
CH3
H
H





La495.
CH
CCD3
N
CH
S
CD3
H
H





La496.
CH


embedded image


N
CH
S
CD3
H
H





La497.
CH


embedded image


N
CH
S
CD3
H
H





La498.
CH


embedded image


N
CH
S
CD3
H
H





La499.
CH


embedded image


N
CH
S
CD3
H
H





La500.
CH


embedded image


N
CH
S
CD3
H
H





La501.
CH


embedded image


N
CH
S
CD3
H
H





La502.
CH


embedded image


N
CH
S
CD3
H
H





La503.
CH


embedded image


N
CH
S
CD3
H
H





La504.
CH
CCH3
N
CH
S
CH3
H
CH3





La505.
CH


embedded image


N
CH
S
CH3
H
CH3





La506.
CH


embedded image


N
CH
S
CH3
H
CH3





La507.
CH


embedded image


N
CH
S
CH3
H
CH3





La508.
CH


embedded image


N
CH
S
CH3
H
CH3





La509.
CH


embedded image


N
CH
S
CH3
H
CH3





La510.
CH


embedded image


N
CH
S
CH3
H
CH3





La511.
CH


embedded image


N
CH
S
CH3
H
CH3





La512.
CH


embedded image


N
CH
S
CH3
H
CH3





La513.
CH
CCD3
N
CH
S
CD3
H
CD3





La514.
CH


embedded image


N
CH
S
CD3
H
CD3





La515.
CH


embedded image


N
CH
S
CD3
H
CD3





La516.
CH


embedded image


N
CH
S
CD3
H
CD3





La517.
CH


embedded image


N
CH
S
CD3
H
CD3





La518.
CH


embedded image


N
CH
S
CD3
H
CD3





La519.
CH


embedded image


N
CH
S
CD3
H
CD3





La520.
CH


embedded image


N
CH
S
CD3
H
CD3





La521.
CH


embedded image


N
CH
S
CD3
H
CD3





La522.
CH
CH
N
CH
Se
H
H
H


La523.
CH
CH
N
CH
Se
CH3
H
H


La524.
CH
CH
N
CH
Se
H
CH3
H


La525.
CH
CH
N
CH
Se
CH3
H
CH3


La526.
CH
CH
N
CH
Se
CD3
H
H


La527.
CH
CH
N
CH
Se
H
CD3
H


La528.
CH
CH
N
CH
Se
CH3
H
CD3


La529.
CH
CCH3
N
CH
Se
H
H
H





La530.
H


embedded image


N
CH
Se
H
H
H





La531.
CH


embedded image


N
CH
Se
H
H
H





La532.
CH


embedded image


N
CH
Se
H
H
H





La533.
CH


embedded image


N
CH
Se
H
H
H





La534.
CH


embedded image


N
CH
Se
H
H
H





La535.
CH


embedded image


N
CH
Se
H
H
H





La536.
CH


embedded image


N
CH
Se
H
H
H





La537.
CH


embedded image


N
CH
Se
H
H
H





La538.
CH
CCD3
N
CH
Se
H
H
H





La539.
CH


embedded image


N
CH
Se
H
H
H





La540.
CH


embedded image


N
CH
Se
H
H
H





La541.
CH


embedded image


N
CH
Se
H
H
H





La542.
CH


embedded image


N
CH
Se
H
H
H





La543.
CH


embedded image


N
CH
Se
H
H
H





La544.
CH


embedded image


N
CH
Se
H
H
H





La545.
CH


embedded image


N
CH
Se
H
H
H





La546.
CH


embedded image


N
CH
Se
H
H
H





La547.
CH
CCH3
N
CH
Se
CH3
H
H





La548.
CH


embedded image


N
CH
Se
CH3
H
H





La549.
CH


embedded image


N
CH
Se
CH3
H
H





La550.
CH


embedded image


N
CH
Se
CH3
H
H





La551.
CH


embedded image


N
CH
Se
CH3
H
H





La552.
CH


embedded image


N
CH
Se
CH3
H
H





La553.
CH


embedded image


N
CH
Se
CH3
H
H





La554.
CH


embedded image


N
CH
Se
CH3
H
H





La555.
CH


embedded image


N
CH
Se
CH3
H
H





La556.
CH
CCD3
N
CH
Se
CD3
H
H





La557.
CH


embedded image


N
CH
Se
CD3
H
H





La558.
CH


embedded image


N
CH
Se
CD3
H
H





La559.
CH


embedded image


N
CH
Se
CD3
H
H





La560.
CH


embedded image


N
CH
Se
CD3
H
H





La561.
CH


embedded image


N
CH
Se
CD3
H
H





La562.
CH


embedded image


N
CH
Se
CD3
H
H





La563.
CH


embedded image


N
CH
Se
CD3
H
H





La564.
CH


embedded image


N
CH
Se
CD3
H
H





La565.
CH
CCH3
N
CH
Se
CH3
H
CH3





La566.
CH


embedded image


N
CH
Se
CH3
H
CH3





La567.
CH


embedded image


N
CH
Se
CH3
H
CH3





La568.
CH


embedded image


N
CH
Se
CH3
H
CH3





La569.
CH


embedded image


N
CH
Se
CH3
H
CH3





La570.
CH


embedded image


N
CH
Se
CH3
H
CH3





La571.
CH


embedded image


N
CH
Se
CH3
H
CH3





La572.
CH


embedded image


N
CH
Se
CH3
H
CH3





La573.
CH


embedded image


N
CH
Se
CH3
H
CH3





La574.
CH
CCD3
N
CH
Se
CD3
H
CD3





La575.
CH


embedded image


N
CH
Se
CD3
H
CD3





La576.
CH


embedded image


N
CH
Se
CD3
H
CD3





La577.
CH


embedded image


N
CH
Se
CD3
H
CD3





La578.
CH


embedded image


N
CH
Se
CD3
H
CD3





La579.
CH


embedded image


N
CH
Se
CD3
H
CD3





La580.
CH


embedded image


N
CH
Se
CD3
H
CD3





La581.
CH


embedded image


N
CH
Se
CD3
H
CD3





La582.
CH


embedded image


N
CH
Se
CD3
H
CD3





La583.
CH
CH
CH
N
S
H
H
H


La584.
CH
CH
CH
N
S
CH3
H
H


La585.
CH
CH
CH
N
S
H
CH3
H


La586.
CH
CH
CH
N
S
CH3
H
CH3


La587.
CH
CH
CH
N
S
CD3
H
H


La588.
CH
CH
CH
N
S
H
CD3
H


La589.
CH
CH
CH
N
S
CH3
H
CD3


La590.
CH
CH
CCH3
N
S
H
H
H





La591.
CH
CH


embedded image


N
S
H
H
H





La592.
CH
CH


embedded image


N
S
H
H
H





La593.
CH
CH


embedded image


N
S
H
H
H





La594.
CH
CH


embedded image


N
S
H
H
H





La595.
CH
CH


embedded image


N
S
H
H
H





La596.
CH
CH


embedded image


N
S
H
H
H





La597.
CH
CH


embedded image


N
S
H
H
H





La598.
CH
CH


embedded image


N
S
H
H
H





La599.
CH
CH
CCD3
N
S
H
H
H





La600.
CH
CH


embedded image


N
S
H
H
H





La601.
CH
CH


embedded image


N
S
H
H
H





La602.
CH
CH


embedded image


N
S
H
H
H





La603.
CH
CH


embedded image


N
S
H
H
H





La604.
CH
CH


embedded image


N
S
H
H
H





La605.
CH
CH


embedded image


N
S
H
H
H





La606.
CH
CH


embedded image


N
S
H
H
H





La607.
CH
CH


embedded image


N
S
H
H
H





La608.
CH
CH
CCH3
N
S
CH3
H
H





La609.
CH
CH


embedded image


N
S
CH3
H
H





La610.
CH
CH


embedded image


N
S
CH3
H
H





La611.
CH
CH


embedded image


N
S
CH3
H
H





La612.
CH
CH


embedded image


N
S
CH3
H
H





La613.
CH
CH


embedded image


N
S
CH3
H
H





La614.
CH
CH


embedded image


N
S
CH3
H
H





La615.
CH
CH


embedded image


N
S
CH3
H
H





La616.
CH
CH


embedded image


N
S
CH3
H
H





La617.
CH
CH
CCD3
N
S
CD3
H
H





La618.
CH
CH


embedded image


N
S
CD3
H
H





La619.
CH
CH


embedded image


N
S
CD3
H
H





La620.
CH
CH


embedded image


N
S
CD3
H
H





La621.
CH
CH


embedded image


N
S
CD3
H
H





La622.
CH
CH


embedded image


N
S
CD3
H
H





La623.
CH
CH


embedded image


N
S
CD3
H
H





La624.
CH
CH


embedded image


N
S
CD3
H
H





La625.
CH
CH


embedded image


N
S
CD3
H
H





La626.
CH
CH
CCH3
N
S
CH3
H
CH3





La627.
CH
CH


embedded image


N
S
CH3
H
CH3





La628.
CH
CH


embedded image


N
S
CH3
H
CH3





La629.
CH
CH


embedded image


N
S
CH3
H
CH3





La630.
CH
CH


embedded image


N
S
CH3
H
CH3





La631.
CH
CH


embedded image


N
S
CH3
H
CH3





La632.
CH
CH


embedded image


N
S
CH3
H
CH3





La633.
CH
CH


embedded image


N
S
CH3
H
CH3





La634.
CH
CH


embedded image


N
S
CH3
H
CH3





La635.
CH
CH
CCD3
N
S
CD3
H
CD3





La636.
CH
CH


embedded image


N
S
CD3
H
CD3





La637.
CH
CH


embedded image


N
S
CD3
H
CD3





La638.
CH
CH


embedded image


N
S
CD3
H
CD3





La639.
CH
CH


embedded image


N
S
CD3
H
CD3





La640.
CH
CH


embedded image


N
S
CD3
H
CD3





La641.
CH
CH


embedded image


N
S
CD3
H
CD3





La642.
CH
CH


embedded image


N
S
CD3
H
CD3





La643.
CH
CH


embedded image


N
S
CD3
H
CD3





La644.
CH
CH
CH
N
Se
H
H
H


La645.
CH
CH
CH
N
Se
CH3
H
H


La646.
CH
CH
CH
N
Se
H
CH3
H


La647.
CH
CH
CH
N
Se
CH3
H
CH3


La648.
CH
CH
CH
N
Se
CD3
H
H


La649.
CH
CH
CH
N
Se
H
CD3
H


La650.
CH
CH
CH
N
Se
CH3
H
CD3


La651.
CH
CH
CCH3
N
Se
H
H
H





La652.
CH
CH


embedded image


N
Se
H
H
H





La653.
CH
CH


embedded image


N
Se
H
H
H





La654.
CH
CH


embedded image


N
Se
H
H
H





La655.
CH
CH


embedded image


N
Se
H
H
H





La656.
CH
CH


embedded image


N
Se
H
H
H





La657.
CH
CH


embedded image


N
Se
H
H
H





La658.
CH
CH


embedded image


N
Se
H
H
H





La659.
CH
CH


embedded image


N
Se
H
H
H





La660.
CH
CH
CCD3
N
Se
H
H
H





La661.
CH
CH


embedded image


N
Se
H
H
H





La662.
CH
CH


embedded image


N
Se
H
H
H





La663.
CH
CH


embedded image


N
Se
H
H
H





La664.
CH
CH


embedded image


N
Se
H
H
H





La665.
CH
CH


embedded image


N
Se
H
H
H





La666.
CH
CH


embedded image


N
Se
H
H
H





La667.
CH
CH


embedded image


N
Se
H
H
H





La668.
CH
CH


embedded image


N
Se
H
H
H





La669.
CH
CH
CCH3
N
Se
CH3
H
H





La670.
CH
CH


embedded image


N
Se
CH3
H
H





La671.
CH
CH


embedded image


N
Se
CH3
H
H





La672.
CH
CH


embedded image


N
Se
CH3
H
H





La673.
CH
CH


embedded image


N
Se
CH3
H
H





La674.
CH
CH


embedded image


N
Se
CH3
H
H





La675.
CH
CH


embedded image


N
Se
CH3
H
H





La676.
CH
CH


embedded image


N
Se
CH3
H
H





La677.
CH
CH


embedded image


N
Se
CH3
H
H





La678.
CH
CH
CCD3
N
Se
CD3
H
H





La679.
CH
CH


embedded image


N
Se
CD3
H
H





La680.
CH
CH


embedded image


N
Se
CD3
H
H





La681.
CH
CH


embedded image


N
Se
CD3
H
H





La682.
CH
CH


embedded image


N
Se
CD3
H
H





La683.
CH
CH


embedded image


N
Se
CD3
H
H





La684.
CH
CH


embedded image


N
Se
CD3
H
H





La685.
CH
CH


embedded image


N
Se
CD3
H
H





La686.
CH
CH


embedded image


N
Se
CD3
H
H





La687.
CH
CH
CCH3
N
Se
CH3
H
CH3





La688.
CH
CH


embedded image


N
Se
CH3
H
CH3





La689.
CH
CH


embedded image


N
Se
CH3
H
CH3





La690.
CH
CH


embedded image


N
Se
CH3
H
CH3





La691.
CH
CH


embedded image


N
Se
CH3
H
CH3





La692.
CH
CH


embedded image


N
Se
CH3
H
CH3





La693.
CH
CH


embedded image


N
Se
CH3
H
CH3





La694.
CH
CH


embedded image


N
Se
CH3
H
CH3





La695.
CH
CH


embedded image


N
Se
CH3
H
CH3





La696.
CH
CH
CCD3
N
Se
CD3
H
CD3





La697.
CH
CH


embedded image


N
Se
CD3
H
CD3





La698.
CH
CH


embedded image


N
Se
CD3
H
CD3





La699.
CH
CH


embedded image


N
Se
CD3
H
CD3





La700.
CH
CH


embedded image


N
Se
CD3
H
CD3





La701.
CH
CH


embedded image


N
Se
CD3
H
CD3





La702.
CH
CH


embedded image


N
Se
CD3
H
CD3





La703.
CH
CH


embedded image


N
Se
CD3
H
CD3





La704.
CH
CH


embedded image


N
Se
CD3
H
CD3





La705.
N
CH
N
CH
S
H
H
H


La706.
N
CH
N
CH
S
CH3
H
H


La707.
N
CH
N
CH
S
H
CH3
H


La708.
N
CH
N
CH
S
CH3
H
CH3


La709.
N
CH
N
CH
S
CD3
H
H


La710.
N
CH
N
CH
S
H
CD3
H


La711.
N
CH
N
CH
S
CH3
H
CD3


La712.
N
CCH3
N
CH
S
H
H
H





La713.
N


embedded image


N
CH
S
H
H
H





La714.
N


embedded image


N
CH
S
H
H
H





La715.
N


embedded image


N
CH
S
H
H
H





La716.
N


embedded image


N
CH
S
H
H
H





La717.
N


embedded image


N
CH
S
H
H
H





La718.
N


embedded image


N
CH
S
H
H
H





La719.
N


embedded image


N
CH
S
H
H
H





La720.
N


embedded image


N
CH
S
H
H
H





La721.
N
CCD3
N
CH
S
H
H
H





La722.
N


embedded image


N
CH
S
H
H
H





La723.
N


embedded image


N
CH
S
H
H
H





La724.
N


embedded image


N
CH
S
H
H
H





La725.
N


embedded image


N
CH
S
H
H
H





La726.
N


embedded image


N
CH
S
H
H
H





La727.
N


embedded image


N
CH
S
H
H
H





La728.
N


embedded image


N
CH
S
H
H
H





La729.
N


embedded image


N
CH
S
H
H
H





La730.
N
CCH3
N
CH
S
CH3
H
H





La731.
N


embedded image


N
CH
S
CH3
H
H





La732.
N


embedded image


N
CH
S
CH3
H
H





La733.
N


embedded image


N
CH
S
CH3
H
H





La734.
N


embedded image


N
CH
S
CH3
H
H





La735.
N


embedded image


N
CH
S
CH3
H
H





La736.
N


embedded image


N
CH
S
CH3
H
H





La737.
N


embedded image


N
CH
S
CH3
H
H





La738.
N


embedded image


N
CH
S
CH3
H
H





La739.
N
CCD3
N
CH
S
CD3
H
H





La740.
N


embedded image


N
CH
S
CD3
H
H





La741.
N


embedded image


N
CH
S
CD3
H
H





La742.
N


embedded image


N
CH
S
CD3
H
H





La743.
N


embedded image


N
CH
S
CD3
H
H





La744.
N


embedded image


N
CH
S
CD3
H
H





La745.
N


embedded image


N
CH
S
CD3
H
H





La746.
N


embedded image


N
CH
S
CD3
H
H





La747.
N


embedded image


N
CH
S
CD3
H
H





La748.
N
CCH3
N
CH
S
CH3
H
CH3





La749.
N


embedded image


N
CH
S
CH3
H
CH3





La750.
N


embedded image


N
CH
S
CH3
H
CH3





La751.
N


embedded image


N
CH
S
CH3
H
CH3





La752.
N


embedded image


N
CH
S
CH3
H
CH3





La753.
N


embedded image


N
CH
S
CH3
H
CH3





La754.
N


embedded image


N
CH
S
CH3
H
CH3





La755.
N


embedded image


N
CH
S
CH3
H
CH3





La756.
N


embedded image


N
CH
S
CH3
H
CH3





La757.
N
CD3
N
CH
S
CD3
H
CD3





La758.
N


embedded image


N
CH
S
CD3
H
CD3





La759.
N


embedded image


N
CH
S
CD3
H
CD3





La760.
N


embedded image


N
CH
S
CD3
H
CD3





La761.
N


embedded image


N
CH
S
CD3
H
CD3





La762.
N


embedded image


N
CH
S
CD3
H
CD3





La763.
N


embedded image


N
CH
S
CD3
H
CD3





La764.
N


embedded image


N
CH
S
CD3
H
CD3





La765.
N


embedded image


N
CH
S
CD3
H
CD3





La766.
N
CH
N
CH
Se
H
H
H


La767.
N
CH
N
CH
Se
CH3
H
H


La768.
N
CH
N
CH
Se
H
CH3
H


La769.
N
CH
N
CH
Se
CH3
H
CH3


La770.
N
CH
N
CH
Se
CD3
H
H


La771.
N
CH
N
CH
Se
H
CD3
H


La772.
N
CH
N
CH
Se
CH3
H
CD3


La773.
N
CCH3
N
CH
Se
H
H
H





La774.
N


embedded image


N
CH
Se
H
H
H





La775.
N


embedded image


N
CH
Se
H
H
H





La776.
N


embedded image


N
CH
Se
H
H
H





La777.
N


embedded image


N
CH
Se
H
H
H





La778.
N


embedded image


N
CH
Se
H
H
H





La779.
N


embedded image


N
CH
Se
H
H
H





La780.
N


embedded image


N
CH
Se
H
H
H





La781.
N


embedded image


N
CH
Se
H
H
H





La782.
N
CCD3
N
CH
Se
H
H
H





La783.
N


embedded image


N
CH
Se
H
H
H





La784.
N


embedded image


N
CH
Se
H
H
H





La785.
N


embedded image


N
CH
Se
H
H
H





La786.
N


embedded image


N
CH
Se
H
H
H





La787.
N


embedded image


N
CH
Se
H
H
H





La788.
N


embedded image


N
CH
Se
H
H
H





La789.
N


embedded image


N
CH
Se
H
H
H





La790.
N


embedded image


N
CH
Se
H
H
H





La791.
N
CCH3
N
CH
Se
CH3
H
H





La792.
N


embedded image


N
CH
Se
CH3
H
H





La793.
N


embedded image


N
CH
Se
CH3
H
H





La794.
N


embedded image


N
CH
Se
CH3
H
H





La795.
N


embedded image


N
CH
Se
CH3
H
H





La796.
N


embedded image


N
CH
Se
CH3
H
H





La797.
N


embedded image


N
CH
Se
CH3
H
H





La798.
N


embedded image


N
CH
Se
CH3
H
H





La799.
N


embedded image


N
CH
Se
CH3
H
H





La800.
N
CCD3
N
CH
Se
CD3
H
H





La801.
N


embedded image


N
CH
Se
CD3
H
H





La802.
N


embedded image


N
CH
Se
CD3
H
H





La803.
N


embedded image


N
CH
Se
CD3
H
H





La804.
N


embedded image


N
CH
Se
CD3
H
H





La805.
N


embedded image


N
CH
Se
CD3
H
H





La806.
N


embedded image


N
CH
Se
CD3
H
H





La807.
N


embedded image


N
CH
Se
CD3
H
H





La808.
N


embedded image


N
CH
Se
CD3
H
H





La809.
N
CCH3
N
CH
Se
CH3
H
CH3





La810.
N


embedded image


N
CH
Se
CH3
H
CH3





La811.
N


embedded image


N
CH
Se
CH3
H
CH3





La812.
N


embedded image


N
CH
Se
CH3
H
CH3





La813.
N


embedded image


N
CH
Se
CH3
H
CH3





La814.
N


embedded image


N
CH
Se
CH3
H
CH3





La815.
N


embedded image


N
CH
Se
CH3
H
CH3





La816.
N


embedded image


N
CH
Se
CH3
H
CH3





La817.
N


embedded image


N
CH
Se
CH3
H
CH3





La818.
N
CCD3
N
CH
Se
CD3
H
CD3





La819.
N


embedded image


N
CH
Se
CD3
H
CD3





La820.
N


embedded image


N
CH
Se
CD3
H
CD3





La821.
N


embedded image


N
CH
Se
CD3
H
CD3





La822.
N


embedded image


N
CH
Se
CD3
H
CD3





La823.
N


embedded image


N
CH
Se
CD3
H
CD3





La824.
N


embedded image


N
CH
Se
CD3
H
CD3





La825.
N


embedded image


N
CH
Se
CD3
H
CD3





La826.
N


embedded image


N
CH
Se
CD3
H
CD3





La827.
N
CH
CH
N
S
H
H
H


La828.
N
CH
CH
N
S
CH3
H
H


La829.
N
CH
CH
N
S
H
CH3
H


La830.
N
CH
CH
N
S
CH3
H
CH3


La831.
N
CH
CH
N
S
CD3
H
H


La832.
N
CH
CH
N
S
H
CD3
H


La833.
N
CH
CH
N
S
CH3
H
CD3


La834.
N
CCH3
CH
N
S
H
H
H





La835.
N


embedded image


CH
N
S
H
H
H





La836.
N


embedded image


CH
N
S
H
H
H





La837.
N


embedded image


CH
N
S
H
H
H





La838.
N


embedded image


CH
N
S
H
H
H





La839.
N


embedded image


CH
N
S
H
H
H





La840.
N


embedded image


CH
N
S
H
H
H





La841.
N


embedded image


CH
N
S
H
H
H





La842.
N


embedded image


CH
N
S
H
H
H





La843.
N
CCD3
CH
N
S
H
H
H





La844.
N


embedded image


CH
N
S
H
H
H





La845.
N


embedded image


CH
N
S
H
H
H





La846.
N


embedded image


CH
N
S
H
H
H





La847.
N


embedded image


CH
N
S
H
H
H





La848.
N


embedded image


CH
N
S
H
H
H





La849.
N


embedded image


CH
N
S
H
H
H





La850.
N


embedded image


CH
N
S
H
H
H





La851.
N


embedded image


CH
N
S
H
H
H





La852.
N
CCH3
CH
N
S
CH3
H
H





La853.
N


embedded image


CH
N
S
CH3
H
H





La854.
N


embedded image


CH
N
S
CH3
H
H





La855.
N


embedded image


CH
N
S
CH3
H
H





La856.
N


embedded image


CH
N
S
CH3
H
H





La857.
N


embedded image


CH
N
S
CH3
H
H





La858.
N


embedded image


CH
N
S
CH3
H
H





La859.
N


embedded image


CH
N
S
CH3
H
H





La860.
N


embedded image


CH
N
S
CH3
H
H





La861.
N
CCD3
CH
N
S
CD3
H
H





La862.
N


embedded image


CH
N
S
CD3
H
H





La863.
N


embedded image


CH
N
S
CD3
H
H





La864.
N


embedded image


CH
N
S
CD3
H
H





La865.
N


embedded image


CH
N
S
CD3
H
H





La866.
N


embedded image


CH
N
S
CD3
H
H





La867.
N


embedded image


CH
N
S
CD3
H
H





La868.
N


embedded image


CH
N
S
CD3
H
H





La869.
N


embedded image


CH
N
S
CD3
H
H





La870.
N
CCH3
CH
N
S
CH3
H
CH3





La871.
N


embedded image


CH
N
S
CH3
H
CH3





La872.
N


embedded image


CH
N
S
CH3
H
CH3





La873.
N


embedded image


CH
N
S
CH3
H
CH3





La874.
N


embedded image


CH
N
S
CH3
H
CH3





La875.
N


embedded image


CH
N
S
CH3
H
CH3





La876.
N


embedded image


CH
N
S
CH3
H
CH3





La877.
N


embedded image


CH
N
S
CH3
H
CH3





La878.
N


embedded image


CH
N
S
CH3
H
CH3





La879.
N
CCD3
CH
N
S
CD3
H
CD3





La880.
N


embedded image


CH
N
S
CD3
H
CD3





La881.
N


embedded image


CH
N
S
CD3
H
CD3





La882.
N


embedded image


CH
N
S
CD3
H
CD3





La883.
N


embedded image


CH
N
S
CD3
H
CD3





La884.
N


embedded image


CH
N
S
CD3
H
CD3





La885.
N


embedded image


CH
N
S
CD3
H
CD3





La886.
N


embedded image


CH
N
S
CD3
H
CD3





La887.
N


embedded image


CH
N
S
CD3
H
CD3





La888.
N
CH
CH
N
Se
H
H
H


La889.
N
CH
CH
N
Se
CH3
H
H


La890.
N
CH
CH
N
Se
H
CH3
H


La891.
N
CH
CH
N
Se
CH3
H
CH3


La892.
N
CH
CH
N
Se
CD3
H
H


La893.
N
CH
CH
N
Se
H
CD3
H


La894.
N
CH
CH
N
Se
CH3
H
CD3


La895.
N
CCH3
CH
N
Se
H
H
H





La896.
N


embedded image


CH
N
Se
H
H
H





La897.
N


embedded image


CH
N
Se
H
H
H





La898.
N


embedded image


CH
N
Se
H
H
H





La899.
N


embedded image


CH
N
Se
H
H
H





La900.
N


embedded image


CH
N
Se
H
H
H





La901.
N


embedded image


CH
N
Se
H
H
H





La902.
N


embedded image


CH
N
Se
H
H
H





La903.
N


embedded image


CH
N
Se
H
H
H





La904.
N
CCD3
CH
N
Se
H
H
H





La905.
N


embedded image


CH
N
Se
H
H
H





La906.
N


embedded image


CH
N
Se
H
H
H





La907.
N


embedded image


CH
N
Se
H
H
H





La908.
N


embedded image


CH
N
Se
H
H
H





La909.
N


embedded image


CH
N
Se
H
H
H





La910.
N


embedded image


CH
N
Se
H
H
H





La911.
N


embedded image


CH
N
Se
H
H
H





La912.
N


embedded image


CH
N
Se
H
H
H





La913.
N
CCH3
CH
N
Se
CH3
H
H





La914.
N


embedded image


CH
N
Se
CH3
H
H





La915.
N


embedded image


CH
N
Se
CH3
H
H





La916.
N


embedded image


CH
N
Se
CH3
H
H





La917.
N


embedded image


CH
N
Se
CH3
H
H





La918.
N


embedded image


CH
N
Se
CH3
H
H





La919.
N


embedded image


CH
N
Se
CH3
H
H





La920.
N


embedded image


CH
N
Se
CH3
H
H





La921.
N


embedded image


CH
N
Se
CH3
H
H





La922.
N
CCD3
CH
N
Se
CD3
H
H





La923.
N


embedded image


CH
N
Se
CD3
H
H





La924.
N


embedded image


CH
N
Se
CD3
H
H





La925.
N


embedded image


CH
N
Se
CD3
H
H





La926.
N


embedded image


CH
N
Se
CD3
H
H





La927.
N


embedded image


CH
N
Se
CD3
H
H





La928.
N


embedded image


CH
N
Se
CD3
H
H





La929.
N


embedded image


CH
N
Se
CD3
H
H





La930.
N


embedded image


CH
N
Se
CD3
H
H





La931.
N
CCH3
CH
N
Se
CH3
H
CH3





La932.
N


embedded image


CH
N
Se
CH3
H
CH3





La933.
N


embedded image


CH
N
Se
CH3
H
CH3





La934.
N


embedded image


CH
N
Se
CH3
H
CH3





La935.
N


embedded image


CH
N
Se
CH3
H
CH3





La936.
N


embedded image


CH
N
Se
CH3
H
CH3





La937.
N


embedded image


CH
N
Se
CH3
H
CH3





La938.
N


embedded image


CH
N
Se
CH3
H
CH3





La939.
N


embedded image


CH
N
Se
CH3
H
CH3





La940.
N
CCD3
CH
N
Se
CD3
H
CD3





La941.
N


embedded image


CH
N
Se
CD3
H
CD3





La942.
N


embedded image


CH
N
Se
CD3
H
CD3





La943.
N


embedded image


CH
N
Se
CD3
H
CD3





La944.
N


embedded image


CH
N
Se
CD3
H
CD3





La945.
N


embedded image


CH
N
Se
CD3
H
CD3





La946.
N


embedded image


CH
N
Se
CD3
H
CD3





La947.
N


embedded image


CH
N
Se
CD3
H
CD3





La948.
N


embedded image


CH
N
Se
CD3
H
CD3





La949.
CH
N
CH
N
S
H
H
H


La950.
CH
N
CH
N
S
CH3
H
H


La951.
CH
N
CH
N
S
H
CH3
H


La952.
CH
N
CH
N
S
CH3
H
CH3


La953.
CH
N
CH
N
S
CD3
H
H


La954.
CH
N
CH
N
S
H
CD3
H


La955.
CH
N
CH
N
S
CH3
H
CD3


La956.
CH
N
CCH3
N
S
H
H
H





La957.
CH
N


embedded image


N
S
H
H
H





La958.
CH
N


embedded image


N
S
H
H
H





La959.
CH
N


embedded image


N
S
H
H
H





La960.
CH
N


embedded image


N
S
H
H
H





La961.
CH
N


embedded image


N
S
H
H
H





La962.
CH
N


embedded image


N
S
H
H
H





La963.
CH
N


embedded image


N
S
H
H
H





La964.
CH
N


embedded image


N
S
H
H
H





La965.
CH
N
CCD3
N
S
H
H
H





La966.
CH
N


embedded image


N
S
H
H
H





La967.
CH
N


embedded image


N
S
H
H
H





La968.
CH
N


embedded image


N
S
H
H
H





La969.
CH
N


embedded image


N
S
H
H
H





La970.
CH
N


embedded image


N
S
H
H
H





La971.
CH
N


embedded image


N
S
H
H
H





La972.
CH
N


embedded image


N
S
H
H
H





La973.
CH
N


embedded image


N
S
H
H
H





La974.
CH
N
CCH3
N
S
CH3
H
H





La975.
CH
N


embedded image


N
S
CH3
H
H





La976.
CH
N


embedded image


N
S
CH3
H
H





La977.
CH
N


embedded image


N
S
CH3
H
H





La978.
CH
N


embedded image


N
S
CH3
H
H





La979.
CH
N


embedded image


N
S
CH3
H
H





La980.
CH
N


embedded image


N
S
CH3
H
H





La981.
CH
N


embedded image


N
S
CH3
H
H





La982.
CH
N


embedded image


N
S
CH3
H
H





La983.
CH
N
CCD3
N
S
CD3
H
H





La984.
CH
N


embedded image


N
S
CD3
H
H





La985.
CH
N


embedded image


N
S
CD3
H
H





La986.
CH
N


embedded image


N
S
CD3
H
H





La987.
CH
N


embedded image


N
S
CD3
H
H





La988.
CH
N


embedded image


N
S
CD3
H
H





La989.
CH
N


embedded image


N
S
CD3
H
H





La990.
CH
N


embedded image


N
S
CD3
H
H





La991.
CH
N


embedded image


N
S
CD3
H
H





La992.
CH
N
CCH3
N
S
CH3
H
CH3





La993.
CH
N


embedded image


N
S
CH3
H
CH3





La994.
CH
N


embedded image


N
S
CH3
H
CH3





La995.
CH
N


embedded image


N
S
CH3
H
CH3





La996.
CH
N


embedded image


N
S
CH3
H
CH3





La997.
CH
N


embedded image


N
S
CH3
H
CH3





La998.
CH
N


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N
S
CH3
H
CH3





La999.
CH
N


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N
S
CH3
H
CH3





La1000.
CH
N


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N
S
CH3
H
CH3





La1001.
CH
N
CCD3
N
S
CD3
H
CD3





La1002.
CH
N


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N
S
CD3
H
CD3





La1003.
CH
N


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N
S
CD3
H
CD3





La1004.
CH
N


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N
S
CD3
H
CD3





La1005.
CH
N


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N
S
CD3
H
CD3





La1006.
CH
N


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N
S
CD3
H
CD3





La1007.
CH
N


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N
S
CD3
H
CD3





La1008.
CH
N


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N
S
CD3
H
CD3





La1009.
CH
N


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N
S
CD3
H
CD3





La1010.
CH
N
CH
N
Se
H
H
H


La1011.
CH
N
CH
N
Se
CH3
H
H


La1012.
CH
N
CH
N
Se
H
CH3
H


La1013.
CH
N
CH
N
Se
CH3
H
CH3


La1014.
CH
N
CH
N
Se
CD3
H
H


La1015.
CH
N
CH
N
Se
H
CD3
H


La1016.
CH
N
CH
N
Se
CH3
H
CD3


La1017.
CH
N
CCH3
N
Se
H
H
H





La1018.
CH
N


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N
Se
H
H
H





La1019.
CH
N


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N
Se
H
H
H





La1020.
CH
N


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N
Se
H
H
H





La1021.
CH
N


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N
Se
H
H
H





La1022.
CH
N


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N
Se
H
H
H





La1023.
CH
N


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N
Se
H
H
H





La1024.
CH
N


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N
Se
H
H
H





La1025.
CH
N


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N
Se
H
H
H





La1026.
CH
N
CCD3
N
Se
H
H
H





La1027.
CH
N


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N
Se
H
H
H





La1028.
CH
N


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N
Se
H
H
H





La1029.
CH
N


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N
Se
H
H
H





La1030.
CH
N


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N
Se
H
H
H





La1031.
CH
N


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N
Se
H
H
H





La1032.
CH
N


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N
Se
H
H
H





La1033.
CH
N


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N
Se
H
H
H





la1034.
CH
N


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N
Se
H
H
H





La1035.
CH
N
CCH3
N
Se
CH3
H
H





La1036.
CH
N


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N
Se
CH3
H
H





La1037.
CH
N


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N
Se
CH3
H
H





La1038.
CH
N


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N
Se
CH3
H
H





La1039.
CH
N


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N
Se
CH3
H
H





La1040.
CH
N


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N
Se
CH3
H
H





La1041.
CH
N


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N
Se
CH3
H
H





La1042.
CH
N


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N
Se
CH3
H
H





La1043.
CH
N


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N
Se
CH3
H
H





La1044.
CH
N
CCD3
N
Se
CD3
H
H





La1045.
CH
N


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N
Se
CD3
H
H





La1046.
CH
N


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N
Se
CD3
H
H





La1047.
CH
N


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N
Se
CD3
H
H





La1048.
CH
N


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N
Se
CD3
H
H





La1049.
CH
N


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N
Se
CD3
H
H





La1050.
CH
N


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N
Se
CD3
H
H





La1051.
CH
N


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N
Se
CD3
H
H





La1052.
CH
N


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N
Se
CD3
H
H





La1053.
CH
N
CCH3
N
Se
CH3
H
CH3





La1054.
CH
N


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N
Se
CH3
H
CH3





La1055.
CH
N


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N
Se
CH3
H
CH3





La1056.
CH
N


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N
Se
CH3
H
CH3





La1057.
CH
N


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N
Se
CH3
H
CH3





La1058.
CH
N


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N
Se
CH3
H
CH3





La1059.
CH
N


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N
Se
CH3
H
CH3





La1060.
CH
N


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N
Se
CH3
H
CH3





La1061.
CH
N


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N
Se
CH3
H
CH3





La1062.
CH
N
CCD3
N
Se
CD3
H
CD3





La1063.
CH
N


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N
Se
CD3
H
CD3





La1064.
CH
N


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N
Se
CD3
H
CD3





La1065.
CH
N


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N
Se
CD3
H
CD3





La1066.
CH
N


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N
Se
CD3
H
CD3





La1067.
CH
N


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N
Se
CD3
H
CD3





La1068.
CH
N


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N
Se
CD3
H
CD3





La1069.
CH
N


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N
Se
CD3
H
CD3





La1070.
CH
N


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N
Se
CD3
H
CD3









In one embodiment, wherein La is selected from the group consisting of La1 to La1070. The specific structures of La1 to La1070 are listed above.


In one embodiment, wherein the metal complex has the formula of IrLa(Lb)2, La is selected from anyone of La1 to La1070 and Lb is selected from anyone or both of the group consisting of:




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In one embodiment, wherein the metal complex has the formula of Ir(La)2Lc, La is selected from anyone or both of La1 to La1070 and Lc is selected from anyone of the group consisting of:




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According to another embodiment, an electroluminescent device is disclosed. The electroluminescent device comprises:

    • an anode,
    • a cathode,
    • and an organic layer, disposed between the anode and the cathode, comprising a metal complex having a partial structure represented by Formula 1:




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Wherein Cy is a substituted or unsubstituted aryl or heteroaryl group having 5 to 24 aromatic ring atoms;

    • Cy is bonded to M via a carbon atom;
    • M is selected from the group consisting of Cu, Ag, Au, Ru, Rh, Pd, Os, Ir, and Pt;
    • X is selected from the group consisting of O, S, and Se;
    • X1, X2, X3, and X4 are independently selected from N or CR;
    • at least one of X1, X2, X3, and X4 is N;
    • wherein R is selected from the group consisting of hydrogen, deuterium, halogen, a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted cycloalkyl group having 3 to 20 ring carbon atoms, a substituted or unsubstituted heteroalkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted arylalkyl group having 7 to 30 carbon atoms, a substituted or unsubstituted alkoxy group having 1 to 20 carbon atoms, a substituted or unsubstituted aryloxy group having 6 to 30 carbon atoms, a substituted or unsubstituted alkenyl group having 2 to 20 carbon atoms, a substituted or unsubstituted aryl group having 6 to 30 carbon atoms, a substituted or unsubstituted heteroaryl group having 3 to 30 carbon atoms, a substituted or unsubstituted alkylsilyl group having 3 to 20 carbon atoms, a substituted or unsubstituted arylsilyl group having 6 to 20 carbon atoms, a substituted or unsubstituted amino group having 0 to 20 carbon atoms, an acyl group, a carbonyl group, a carboxylic acid group, an ester group, a nitrile group, an isonitrile group, a sulfanyl group, a sulfinyl group, a sulfonyl group, a phosphino group, and combinations thereof;
    • two adjacent substituents are optionally joined to form a ring.


In one embodiment, wherein the organic layer is an emissive layer and the metal complex is an emitter.


In one embodiment, wherein the organic layer further comprises a host.


In one embodiment, wherein the organic layer comprises at least two hosts.


In one embodiment, wherein the host compound comprises at least one the chemical groups selected from the group consisting of: benzene, biphenyl, carbazole, azacarbazole, indolocarbazole, dibenzothiophene, dibenzofuran, dibenzoselenophene, triphenylene, fluorene, silafluorene, naphthalene, phenanthrene, pyridine, pyrimidine, triazine, quinazoline, quinoxaline, azadibenzothiophene, azadibenzofuran, azadibenzoselenophene, azatriphenylene, aza-phenanthrene and the combinations thereof.


In one embodiment, wherein the electroluminescent device is incorporated into another device selected from the group consisting of: a consumer product, an electronic component module, an organic light-emitting device, and a lighting panel.


According to yet another embodiment, a formulation comprising a metal complex is also disclosed. The specific structure of the metal complex is described in any of the above embodiments.


Combination with Other Materials


The materials described herein as useful for a particular layer in an organic light emitting device may be used in combination with a wide variety of other materials present in the device. The combinations of these materials are described in more detail in U.S. Pat. App. No. 20160359122 at paragraphs 0132-0161, which are incorporated by reference in its entirety. The materials described or referred to the disclosure are non-limiting examples of materials that may be useful in combination with the compounds disclosed herein, and one of skill in the art can readily consult the literature to identify other materials that may be useful in combination.


The materials described herein as useful for a particular layer in an organic light emitting device may be used in combination with a variety of other materials present in the device. For example, emissive dopants disclosed herein may be used in combination with a wide variety of hosts, transport layers, blocking layers, injection layers, electrodes and other layers that may be present. The combination of these materials is described in detail in paragraphs 0080-0101 of U.S. Pat. App. No. 20150349273, which are incorporated by reference in its entirety. The materials described or referred to the disclosure are non-limiting examples of materials that may be useful in combination with the compounds disclosed herein, and one of skill in the art can readily consult the literature to identify other materials that may be useful in combination.


In the embodiments of material synthesis, all reactions were performed under nitrogen protection unless otherwise stated. All reaction solvents were anhydrous and used as received from commercial sources. Synthetic products were structurally confirmed and tested for properties using one or more conventional equipment in the art (including, but not limited to, nuclear magnetic resonance instrument produced by BRUKER, liquid chromatograph produced by SHIMADZU, liquid chromatography-mass spectrometer produced by SHIMADZU, gas chromatography-mass spectrometer produced by SHIMADZU, differential Scanning calorimeters produced by SHIMADZU, fluorescence spectrophotometer produced by SHANGHAI LENGGUANG TECH., electrochemical workstation produced by WUHAN CORRTEST, and sublimation apparatus produced by ANHUI BEQ, etc.) by methods well known to the persons skilled in the art. In the embodiments of the device, the characteristics of the device were also tested using conventional equipment in the art (including, but not limited to, evaporator produced by ANGSTROM ENGINEERING, optical testing system produced by SUZHOU FATAR, life testing system produced by SUZHOU FATAR, and ellipsometer produced by BEIJING ELLITOP, etc.) by methods well known to the persons skilled in the art. As the persons skilled in the art are aware of the above-mentioned equipment use, test methods and other related contents, the inherent data of the sample can be obtained with certainty and without influence, so the above related contents are not further described in this patent.


Material Synthesis Example


The method for preparing the compounds of the present invention is not limited. The following compounds is exemplified as a typical but non-limiting example, and its synthesis route and preparation method are as follows:


Synthesis of Compound A




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Synthesis of 2-(3,5-dimethylphenyl)benzo[d]thiazole. 2-bromobenzo[d]thiazole (40 g, 186 mmol), (3,5-dimethylphenyl)boronic acid (33.6 g, 224 mmol), tetrakis(triphenylphosphine)palladium(0) (10.8 g, 9 mmol) and potassium carbonate (77.2 g, 560 mmol) were added to 800 mL THF in a 2 L three-neck round bottom flask under room temperature. The resulting mixture was purged with nitrogen for 5 min and refluxed overnight under nitrogen. After cooling to room temperature, the reaction mixture was filtrated through Celite and The Celite was washed with water and ethyl acetate. The layers were separated and aqueous layer was extracted with ethyl acetate. The combined organic layer was dried over anhydrous Na2SO4 and evaporated to residue. The residue was purified by flash chromatography (eluent: ethyl acetate/petroleum ether=1/200, v/v) to give 2-(3,5-dimethylphenyl)benzo[d]thiazole as white solid (6.0 g, 13.5%).




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Synthesis of iridium dimer. A mixture of 2-(3,5-dimethylphenyl)benzo[d]thiazole (3.0 g, 12.5 mmol), IrCl3.3H2O (883 mg, 2.506 mmol), 2-ethoxyethanol (60 mL) and water (20 mL) was refluxed under nitrogen for 24 h. After cooling to room temperature, the solvent was removed under reduced pressure to give the iridium dimer that was used in next step without further purification.




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Synthesis of Compound A. Dimer (1.25 mmol), 3,7-diethylnonane-4,6-dione (1.73 g, 8.16 mmol), K2CO3 (1.6 g, 12.05 mmol), and 2-ethoxyethanol (20 mL) was stirred at room temperature under nitrogen for 24 h. The precipitate was filtrated through Celite and washed with ethanol. Dichloromethane was added to the solid and the filtrate was collected. Then ethanol was added and the resulting solution was concentrated, but not to dryness. 2.0 g product was obtained after filtration. The molecular weight of the product was 880, which was confirmed as the target product.


Synthesis of Compound Ir(La46)2(Lc3)




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Synthesis of N-(2,6-dichloropyridin-3-yl)-3,5-dimethylbenzamide. 3,5-dimethylbenzoyl chloride (45.5 g, 269 mmol) was dissolved in 600 mL CH3CN in a 2 L two-neck round bottom flask. The solution was purged with nitrogen for 5 min and then 2,6-dichloropyridin-3-amine (40 g, 245 mmol) was added portion wise. The resulting mixture was heated at 70° C. for 12 h. After cooling to room temperature, precipitate formed in the reaction solution and was collected by filtration and washed with MeOH which gave N-(2,6-dichloropyridin-3-yl)-3,5-dimethylbenzamide as white solid (24 g, 33.2%).




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Synthesis of 5-chloro-2-(3,5-dimethylphenyl)thiazolo[5,4-b]pyridine. A mixture of N-(2,6-dichloropyridin-3-yl)-3,5-dimethylbenzamide (24 g, 81.6 mmol), Lawesson reagent (49 g, 122.5 mmol) and toluene (1 L) was refluxed under nitrogen for 5 h. After cooling to room temperature, the solvent was removed under reduced pressure. Then K2CO3 (33.7 g, 244.8 mmol) and DMF (1 L) was added to the residue and the resulting mixture was heated at 160° C. After TLC showed the completion of the reaction, the reaction solution was cooled to room temperature and 1 L water was added. The layers were separated and aqueous layer was extracted with ethyl acetate. The organic layer was combined, dried over anhydrous Na2SO4 and evaporated to residue. The residue was purified by flash chromatography (eluent: ethyl acetate/petroleum ether=1/50, v/v) to give 5-chloro-2-(3,5-dimethylphenyl)thiazolo[5,4-b]pyridine as white solid (10 g, 44.6%).




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Synthesis of 2-(3,5-dimethylphenyl)-5-isobutylthiazolo[5,4-b]pyridine. 5-chloro-2-(3,5-dimethylphenyl)thiazolo[5,4-b]pyridine (5.5 g, 18.5 mmol), isobutylboronic acid (3.78 g, 37.1 mmol), tris(dibenzylideneacetone)dipalladium(0) (847 mg, 0.925 mmol), 2-dicyclohexylphosphino-2′,6′-dimethoxy-1,1′-biphenyl (1.52 mg, 3.7 mmol) and potassium phosphate (11.7 g, 55.5 mmol) were added to 100 mL toluene in a 250 mL three-neck round bottom flask under room temperature. The resulting mixture was purged with nitrogen for 5 min and refluxed overnight under nitrogen. After cooling to room temperature, the reaction mixture was filtrated through Celite and The Celite was washed with water and ethyl acetate. The layers were separated and aqueous layer was extracted with ethyl acetate. The organic layer was then collected, dried over anhydrous Na2SO4 and evaporated to residue. The residue was purified by flash chromatography (eluent: ethyl acetate/petroleum ether=1/25, v/v) to give 2-(3,5-dimethylphenyl)-5-isobutylthiazolo[5,4-b]pyridine as colorless oil (3 g, 54.8%).




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Synthesis of iridium dimer. A mixture of 2-(3,5-dimethylphenyl)-5-isobutylthiazolo[5,4-b]pyridine (1.6 g, 5.4 mmol), IrCl3.3H2O (635 mg, 1.8 mmol), 2-ethoxyethanol (35 mL) and water (10 mL) was refluxed under nitrogen for 24 h. After cooling to room temperature, the solvent was removed under reduced pressure to give the iridium dimer that was used in next step without further purification.




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Synthesis of Compound Ir(La46)2(Lc3). Dimer (0.9 mmol), 3,7-diethylnonane-4,6-dione (1.9 g, 9 mmol), K2CO3 (1.24 g, 9 mmol), and 2-ethoxyethanol (50 mL) was stirred at room temperature under nitrogen for 24 h. The precipitate was filtrated through Celite and washed with ethanol. Dichloromethane was added to the solid and the filtrate was collected. Then ethanol was added and the resulting solution was concentrated, but not to dryness. 1.0 g product was obtained after filtration. The molecular weight of the product was 994, which was confirmed as the target product.


The persons skilled in the art should know that the above preparation method is only an illustrative example, and the persons skilled in the art can obtain the structure of other compounds of the present invention by modifying the above preparation method.


Device Examples:


A glass substrate with 120 nm thick indium-tin-oxide (ITO) anode was first cleaned and then treated with oxygen plasma and UV ozone. After the treatments, the substrate was baked dry in a glovebox to remove moisture. The substrate was then mounted on a substrate holder and loaded into a vacuum chamber. The organic layers specified below were deposited in sequence by thermal vacuum deposition on the ITO anode at a rate of 0.2-2 Å/s at a vacuum of around 10−8 torr. Compound HI was used as the hole injection layer (HIL). Compound HT was used as the hole transporting layer (HTL). Compound EB was used as the electron blocking layer (EBL). Then the inventive compound or the comparative compound was doped in the host Compound RH as the emitting layer (EML). On the emitting layer, a mixture of Compound ET and 8-Hydroxyquinolinolato-lithium (Liq) was deposited as the electron transporting layer (ETL). Finally, 1 nm-thick Liq was deposited as the electron injection layer and 100 nm of Al was deposited as the cathode. The device was then transferred back to the glovebox and encapsulated with a glass lid and a moisture getter to complete the device.


The detailed device layer structure and thicknesses are shown in the table below. In the layers in which more than one materials were used, they were obtained by doping different compounds in the weight ratios described therein.









TABLE 1







Device structure of device examples












Device ID
HIL
HTL
EBL
EML
ETL





Example 1
Compound
Compound
Compound
Compound RH:Compound
Compound ET:Liq



HI (100 Å)
HT (400 Å)
EB (50 Å)
Ir(La46)2(Lc3) (93:7)
(35:65)






(400 Å)
(350 Å)


Comparative
Compound
Compound
Compound
Compound RH:Compound
Compound ET:Liq


Example 1
HI (100 Å)
HT (400 Å)
EB (50 Å)
A (93:7)
(35:65)






(400 Å)
(350 Å)









The structures of the materials used in the devices are shown below:




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The IVL and lifetime characteristics of the devices were measured at various current densities and voltages. The external quantum efficiency (EQE), λ max, full width at half maximum (FWHM), and CIE data were measured at 1000 nits. The lifetime was tested at a constant current from an initial brightness of 7500 nits.









TABLE 2







Device data














λ max
FWHM

LT95


Device ID
CIE (x, y)
(nm)
(nm)
EQE (%)
(h)















Example 1
(0.561, 0.436)
581
45
17
51


Comparative
(0.516, 0.482)
567
59
15
18


Example 1










Discussion:


From the data in table 2, it can be clearly seen that the device performance of inventive compound is superior than the comparative compound. The inventive compound showed more saturated color. The FWHM of the inventive compound is much narrower than that of the comparative compound (45 nm vs. 59 nm). In addition, the inventive compound had higher EQE than the comparative compound (17% vs. 15%). The inventive compound also showed much longer device lifetime than the comparative compound (51 h vs. 18 h). Therefore, by introducing a nitrogen atom to the top benzene ring of the ligand in the current invention significantly improved the device performance, making the compounds more suitable for commercial applications.


It is understood that the various embodiments described herein are by way of example only and are not intended to limit the scope of the invention. The present invention as claimed may therefore include variations from the particular examples and preferred embodiments described herein, as will be apparent to one of skill in the art. Many of the materials and structures described herein may be substituted with other materials and structures without deviating from the spirit of the invention. It is understood that various theories as to why the invention works are not intended to be limiting.

Claims
  • 1. A metal complex having a partial structure represented by Formula 1:
  • 2. The metal complex of claim 1, wherein the metal is Ir.
  • 3. The metal complex of claim 1, wherein Cy has a partial structure selected from the group consisting of:
  • 4. The metal complex of claim 1, wherein the complex has the formula of M(La)m(Lb)n(Lc)q, wherein Lb and Lc are the second and third ligand coordinating to M, Lb and Lc can be the same or different; La, Lb, and Lc can be optionally joined to form a tetradentate or hexadentate ligand;wherein m is 1, 2, or 3, n is 0, 1, or 2, q is 0, 1, or 2; m+n+q is the oxidation state of M;wherein La is independently selected from the group consisting of:
  • 5. The metal complex of claim 4, wherein La has the structure represented by Formula 2:
  • 6. The metal complex of claim 5, wherein the metal complex has the formula of IrLa(Lb)2, La is selected from any one of La1 to La1070 and Lb is each independently selected from any one of the group consisting of:
  • 7. The metal complex of claim 5, wherein the metal complex has the formula of Ir(La)2Lc, La is each independently selected from any one of La1 to La1070 and Lc is selected from any one of the group consisting of:
  • 8. An electroluminescent device comprises: an anode,a cathode,and an organic layer, disposed between the anode and the cathode, comprising a metal complex having a partial structure represented by Formula 1:
  • 9. The device of claim 8, wherein the organic layer is an emissive layer and the metal complex is an emitter.
  • 10. The device of claim 8, wherein the organic layer further comprises a host.
  • 11. The device of claim 8, wherein the organic layer comprises at least two hosts.
  • 12. The device of claim 10, wherein the host compound comprises at least one of the chemical groups selected from the group consisting of carbazole, azacarbazole, indolocarbazole, dibenzothiophene, dibenzofuran, triphenylene, naphthalene, phenanthrene, triazine, quinazoline, quinoxaline, azadibenzothiophene, azadibenzofuran and the combinations thereof.
  • 13. The device of claim 11, wherein the host compound comprises at least one of the chemical groups selected from the group consisting of carbazole, azacarbazole, indolocarbazole, dibenzothiophene, dibenzofuran, triphenylene, naphthalene, phenanthrene, triazine, quinazoline, quinoxaline, azadibenzothiophene, azadibenzofuran and the combinations thereof.
  • 14. The device of claim 8, wherein the electroluminescent device is incorporated into another device selected from the group consisting of a consumer product, an electronic component module, an organic light-emitting device, and a lighting panel.
  • 15. A formulation comprises the metal complex of claim 1.
  • 16. The metal complex of claim 4, wherein R1, R2, and R3 are each independently selected from the group consisting of hydrogen, deuterium, halogen, a substituted or unsubstituted alkyl group having 1 to 20 carbon atoms, a substituted or unsubstituted cycloalkyl group having 3 to 20 ring carbon atoms, a substituted or unsubstituted alkylsilyl group having 3 to 20 carbon atoms, a nitrile group, an isonitrile group, and combinations thereof.
  • 17. The metal complex of claim 1, wherein one of X1, X2, X3, and X4 is N.
  • 18. The metal complex of claim 4, wherein La is selected from a group consisting of:
  • 19. The metal complex of claim 18, wherein Lc is selected from
Parent Case Info

This application claims the benefit of U.S. Provisional Application No. 62/587,486, filed Nov. 17, 2017, the entire content of which is incorporated herein by reference.

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Related Publications (1)
Number Date Country
20190157575 A1 May 2019 US
Provisional Applications (1)
Number Date Country
62587486 Nov 2017 US