Organic electroluminescent device and based on 2,5-diaminoterephthalic acid derivatives

Information

  • Patent Application
  • 20050003230
  • Publication Number
    20050003230
  • Date Filed
    August 21, 2002
    22 years ago
  • Date Published
    January 06, 2005
    19 years ago
Abstract
The invention relates to an organic electroluminescent device which contains 2,5-diaminoterephthalic acid derivatives of formula 1a as emitter substances in one or several emitter layers in a pure or doped manner. The ring A is a triple unsaturated benzole ring wherein R4′ and R8′ are zero or ring A is a double unsaturated ring respectively provided with a double bond in the 1,2 position and 4,5 position, and wherein R10 is a nitrile radical —CN or a radical C(═X1)—X2R1, R11 is a nitrile radical —CN or a radical —C(═X3)—X4R5, X1 and X3 are oxygen, sulfur or imino, X2 and X4 are oxygen, sulfur or optionally substituted amino, R1-R8, R4′ and R8 are H, C1-20-alkyl, aryl, heteroaryl, R4 and R8 can be halogen, nitro, cyanogen or amino, R2-R4, R6-R8, R4′ and R8′ can be trifluoromethyl or pentafluorophenyl, and wherein certain radicals can form a saturated or unsaturated ring. The devices are characterized by narrow emission bands, low driver voltages, high photometric efficiency and high thermal stability within a broad spectral range.
Description
FIELD OF THE INVENTION

The present invention relates to a new organic electroluminescent device based on 2,5-diaminoterephthalic acid derivatives. Said derivatives are emitter substances for organic light-emitting diodes (OLED).


BACKGROUND TO THE INVENTION

Organic light-emitting diodes, which have long been known, use the electroluminescence of certain organic compounds. An OLED's structure and the tasks of its individual layers are exemplified in FIG. 1:


A layer sequence of organic substances is arranged between two electrodes, of which at least one must be translucent, each organic substance having a specific function within the device.

  • 1. The cathode consists of a base metal or an alloy (e.g. aluminium or calcium) and has the function of injecting electrons;
  • 2. The buffer layer consists of certain metal salts or the oxides thereof, e.g. LiF, and has the function of improving the electron injection into the layer 3;
  • 3. The electron conductor can e.g. consist of Alq3 (tris-(8-hydroxychinolinato)-aluminium) and conducts the electrons from the cathode to the emitting layer or the hole conductor inside the device;
  • 4. The hole conductor mainly consists of triphenylamine derivatives; several hole conductor layers can be provided whose characteristics are adapted to the device and whose function is to transport the holes to the emitting layer;
  • 5. The anode consists of ITO which injects the holes into the hole transport layer;
  • 6. The substrate consists of a transparent material, e.g. glass.


An arrangement of the type described above emits green light generated due to the excitation of Alq3 by the excitons formed from the holes and electrons.


However, such a simple arrangement has several drawbacks:

  • 1. Alq3 only emits light in the green spectral range;
  • 2. The emission band of Alq3 is too broad.


Said drawbacks can in part be eliminated by doping. This means that one or more substances are co-evaporated during the diode's production process. In general, these substances are contained in the Alq3 layer in an amount ranging up to a few percent. Said co-evaporation process is difficult to control.







SUMMARY AND DETAILED DESCRIPTION OF THE INVENTION

The invention relates to new emitter substances which eliminate the known drawbacks of Alq3 both as an emitter substance and a host material for dopants. As a consequence, Alq3 is generally required as an electron conductor only. The new emitter substances are characterized by:

  • 1. narrower emission bands;
  • 2. the devices cover a broad spectral range due to the fact that different substances are used, either in layers separated from one another or in mixed layers;
  • 3. low driver voltages;
  • 4. high photometric efficiency (low power consumption);
  • 5. high luminance (emission intensity);
  • 6. high thermal stability.


For the purposes of the invention, the term “device” relates to an arrangement in which the substrate and layers are arranged on top of one another according to FIG. 1 or 2, but which has not yet been incorporated into a light-emitting diode. Such an inventive device can in principle have the structure shown in FIG. 1 or 2. In said devices, the 2,5-diaminoterephthalic acid derivatives can be co-evaporated either alone or conjointly with other compounds, optionally even with known compounds, to obtain emitters. These emitters are used in combination with known hole conductors.


The object of the invention is to provide new organic electroluminescent devices using improved emitter substances.


According to the invention, the organic electroluminescent device contains 2,5-diaminoterephthalic acid derivatives of the following formula 1a in one or several emitter layers in a pure or doped form in a device
embedded image

    • wherein the ring A is a triply unsaturated benzene ring wherein R4′ and R8′ are omitted, or the ring A is a doubly unsaturated ring having a double bond in the 1,2-position and in the 4,5-position, and
    • wherein R10 represents a nitrile radical —CN or a radical —C(═X1)—X2R1,
    • R11 is a nitrile radical —CN or a radical —C(═X3)—X4R5,
    • wherein
    • X1 and X3 can be the same or different atoms or groups, such as oxygen, sulphur, imino, preferably oxygen;
    • X2 and X4 can be the same or different atoms or groups, such as oxygen, sulphur, amino, wherein the amino nitrogen can be substituted with alkyl having 1 to 20 C-atoms, preferably C1 to C8, or with aryl, e.g. phenyl, naphthyl, or with heteroaryl, e.g. cumaryl, pyridyl, chinolyl, indolyl, carbazolyl, imidazolyl, thienyl, thiazolyl, furyl, oxazolyl;
    • R1 to R8, R4′ and R8′ can be the same or different substituents, such as hydrogen, alkyl having 1 to 20 atoms, preferably C1 to C8; aryl, e.g. phenyl, naphthyl, as well as heteroaryl, e.g. cumaryl, pyridyl, chinolyl, indolyl, carbazolyl, imidazolyl, thienyl, thiazolyl, furyl, oxazolyl, and the aforesaid radicals can be substituted singly or doubly with atoms or groups, e.g. di-C1-C3-amino or alkoxy with alkyl radicals C1 to C10, preferably C1-C4; C1-C4 alkyl, cyano, fluorine, chlorine, bromine or iodine as well as phenyl;
    • R4 and R8 can also be the same or different substituents, such as halogen, nitro, cyano or amino;
    • R2 to R4, R6 to R8, R4′ and R8′ can also be trifluoromethyl or pentafluorophenyl,
    • and wherein the following radicals can form a saturated or unsaturated ring
    • X1 and X2, R1 and R2, R2 and X2, R2 and R3, R3 and R4, R4 and X3, X3 and X4, R5 and X4, R6 and X4, R6 and R7, R7 and R8, R8 and X1, R3 and R4′, R7 and R8′, R4 and R4′, and R8 and R8′, to which rings further rings can be fused.


It is preferred that R2, R3, R6 and R7 be trifluoromethyl or pentafluorophenyl, R4 and R8 be halogen, nitro, cyano or amino, and the other substituents have the meaning indicated above.


It is particularly preferred that R4 and R8 be trifluoromethyl or pentafluorophenyl, and the other substituents have the meaning indicated above.


As regards spelling in the following text, R1-8 means R1 to R8; X2,4 means X2 and X4; R4′,8′ means R4′ and R8′.


The invention also relates to new 2,5-diaminoterephthalic acid derivatives of the formula 19
embedded image

    • wherein X1 is 0 and X2 is O or N; R2 and R6 are methylene (—CH2—) which can be substituted with trifluoromethyl, R3 and R7 are the same or different, H, C1-C8 alkyl, aryl or heteroaryl, and R4 and R8 are the same or different, H, alkyl, aryl or trifluoromethyl. It is particularly preferred that alkyl be C1-C4 alkyl, aryl be phenyl or naphthyl, and heteroaryl be pyridyl, thienyl or furyl.


In general, it is preferred that substituents arranged opposite one another, such as X1 and X3, X2 and X4, R1 and R5, R2 and R6, R3 and R7, R4 and R8, R4′ and R8′, and R10 and R11, are the same, i.e. not different, in all structures according to the invention.


The electroluminescent devices according to the invention preferably contain 2 to 3 different substances which are mixed with one another in one device.


Now, preferred structures will be listed, wherein in the structures 1
embedded image

  • X1 and X2 can be members of a ring provided X1=N and there is no substituent R1 in case X2≠N;
  • X2 and R1 can be members of a ring provided X2=N;
    embedded image
  • X2 and R2 can be members of a ring provided X2=N;
    embedded image
  • R2 and R3 can be members of a ring;
    embedded image
  • R3 and R4 can be members of a ring;
    embedded image
  • R4 and X3 can be members of a ring provided X3=N;
    embedded image
  • X3 and X4 can be members of a ring provided X3=N and there is no substituent R1 in case X4≠N;
    embedded image
  • X4 and R5 can be members of a ring provided X4=N;
    embedded image
  • X4 and R6 can be members of a ring provided X4=N;
    embedded image
  • R6 and R7 can be members of a ring;
    embedded image


R7 and R3 can be members of a ring;
embedded image

  • R8 and X1 can be members of a ring provided Xl=N;
    embedded image
  • X1 and X2 as well as X3 and X4 can be members of a ring provided X3=N and there is no substituent R1,5 in case X2,4≠N;
    embedded image
  • X2 and R1 can be members of a ring provided X2,4=N;


    wherein symmetric combinations of the aforesaid structural types are preferred
    embedded image
  • X2 and R2 as well as X4 and R6 can be members of a ring provided X2,4=N;
    embedded image
  • R2 and R3 as well as R6 and R7 can be members of a ring;
    embedded image


R3 and R4 as well as R7 and R8 can be members of a ring;
embedded image

  • R4 and X3 as well as R8 and X1 can be members of a ring provided X1,3=N;
    embedded imageembedded image

    and wherein in the structure 2
    embedded image


X1 and X2 can be members of a ring X2 and R1 can be members of a ring provided X1=N and there is no substituent provided X2=N; R1 in case X2≠N;
embedded imageembedded image


X2 and R2 can be members of a ring R2 and R3 can be members of a ring; provided X2=N;
embedded image

  • R3 and R4 can be members of a ring;
    embedded image
  • R4 and R4 can be members of a ring;
    embedded image
  • R4 and X3 can be members of a ring provided X3=N;
    embedded image
  • X3 and X4 can be members of a ring provided X3=N and there is no substituent R5 in case X4≠N;
    embedded image


X4 and R5 can be members of a ring provided X4=N;
embedded image

  • X4 and R6 can be members of a ring provided X4=N;
    embedded image
  • R6 and R7 can be members of a ring;
    embedded image
  • R7 and R8 can be members of a ring;
    embedded image
  • R8 and R8′ can be members of a ring;
    embedded image
  • R8 and X1 can be members of a ring provided X1=N;
    embedded image
  • X1 and R2 as well as X3 and X4 can be members of a ring provided X1,3=N and there is no substituent R1,5 in case X2,4≠N;
    embedded image
  • X2 and R1 can be members of a ring provided X2,4=N;


    wherein symmetric combinations of the aforesaid structural types are preferred
    embedded image
  • X2 and R2 as well as X4 and R6 can be members of a ring provided there is no substituent R1,5 in case X2,4≠N;
    embedded image
  • R2 and R3 as well as R6 and R7 can be members of a ring;
    embedded image
  • R3 and R4′ as well as R7 and R8′ can be members of a ring;
    embedded image
  • R4 and R4′ as well as R8 and R8′ can be members of a ring;
    embedded image
  • R4 and X3 as well as R8 and X1 can be members of a ring provided X1,3=N;
    embedded imageembedded image
  • and wherein in the structures 3
    embedded image
  • R2 and R3 can be members of a ring;
  • R3 and R4 can be members of a ring;
    embedded image
  • R6 and R7 can be members of a ring;
    embedded image
  • R7 and R8 can be members of a ring;
    embedded image
  • R2 and R3 as well as R6 and R7 can be members of a ring;
    embedded image
  • R3 and R4 as well as R7 and R8 can be members of a ring;
    embedded image
  • and wherein in the structures 4
    embedded imageembedded image
  • R2 and R3 can be members of a ring;
  • R3 and R4′ can be members of a ring;
    embedded image
  • R4 and R4′ can be members of a ring;
    embedded image
  • R6 and R7 can be members of a ring;
    embedded image
  • R7 and R8′ can be members of a ring;
    embedded image
  • R8 and R8′ can be members of a ring;
    embedded image
  • R2 and R3 as well as R6 and R7 can be members of a ring;
    embedded image
  • R3 and R4′ as well as R7 and R8′ can be members of a ring;
    embedded imageembedded image
  • R4 and R4′ as well as R8 and R8′ can be members of a ring;
    embedded image


The emitter substances of formula 1, i.e. derivatives of 2,5-diaminoterephthalic acid, can be obtained by reacting esters of cyclohexane-2,5-dione-1,4-dicarboxylic acid with primary anilines or amines, subsequent oxidation and, optionally, further modification. Said derivatives can be processed into cyclized derivatives in a manner known per se, as shown e.g. in Formula Diagrams I and II.
embedded imageembedded image


The compounds of formula 3 can be produced by reacting the respective 2,5-diaminoterephthalic acid amides with dehydrating agents.


In order to produce the compounds of formula 4, wherein R4 and R8 as well as R4′ and R8′ are not H, the esters of 2,5-diaminocyclohexane-1,4-dicarboxylic acid are converted into hydrazides and reacted with potassium hexacyanoferrate(III) in order to obtain aldehydes. These 2,5-diaminocyclohexane-1,4-dicarbaldehydes can be converted into oximes which are reacted with formic acid in order to obtain the compounds of formula 4.


Examples of the new emitters according to formula 1 are listed in Table 1:

TABLE 12,5-diaminoterephthalic acid derivativesSubstanceX1X2R3R1embedded image
1.0
embedded image
1.1
OOembedded image—CH3
embedded image
1.2
OOembedded image—CH3
embedded image
1.3
OOembedded image—CH3
embedded image
1.4
OOembedded image—CH3
embedded image
1.5
OOembedded image—C2H5
embedded image
1.6
OOembedded image—CH3
embedded image
1.7
OOembedded image—CH3
embedded image
1.8
OOembedded image—CH3
embedded image
1.9
OOembedded image—CH3
embedded image
1.10
OOembedded image—CH3
embedded image
1.11
OOembedded image—CH3
embedded image
1.12
OOembedded image—CH3
embedded image
1.13
OOembedded image—CH3
embedded image
1.14
OOembedded image—CH3
embedded image
1.15
OOembedded image—CH3
embedded image
1.16
OOembedded image—CH3
embedded image
1.17
OOembedded image—CH3
embedded image
1.18
OOembedded image—CH3
embedded image
1.19
OOembedded image—CH3
embedded image
1.20
OOembedded image—CH3
embedded image
1.21
OOembedded image—CH3
embedded image
1.22
OOembedded image—CH3
embedded image
1.23
OOembedded image—CH3
embedded image
1.24
OOembedded image—CH3
embedded image
1.25
OO—C4H9—CH3
embedded image
1.26
OOembedded image—CH3
embedded image
1.27
OOembedded image—CH3
embedded image
1.28
OOembedded image—CH3
embedded image
1.29
OOembedded image—CH3
embedded image
1.30
OOembedded image—CH3
embedded image
1.31
OOembedded image—CH3
embedded image
1.32
OOembedded image—CH3
embedded image
1.33
OOembedded image—CH3
embedded image
1.34
OOembedded image—CH3
embedded image
1.35
OOembedded image—CH3
embedded image
1.36
OOembedded image—CH3
embedded image
1.37
OOembedded image—CH3
embedded image
1.38
OOembedded image—CH3
embedded image
1.39
OOembedded image—CH3
embedded image
1.40
OOembedded image—CH3
embedded image
1.41
OOembedded image—CH3
embedded image
1.42
OOembedded image—CH3
embedded image
1.43
OOembedded image—CH3
1.44OOembedded image—CH31.45OOembedded image—CH31.46OOembedded image—CH31.47OOembedded image—CH31.48OOembedded image—CH31.49OOembedded image—CH31.50OOembedded image—CH31.51OOembedded image—CH31.52OOembedded image—CH31.53OOembedded image—CH31.54OOembedded image—CH31.55OOembedded image—CH31.56OOembedded image—CH31.57OOembedded image—CH31.58OOembedded image—CH31.59OOembedded image—CH31.60OOembedded image—CH31.61OOembedded image—CH31.62OOembedded image—CH31.63OOembedded image—CH31.64OOembedded image—CH31.65OOembedded image—CH31.67OOembedded image—CH31.68OOembedded image—CH31.69OOembedded image—CH31.70embedded image—CH31.71ONembedded imageembedded image1.72ONembedded imageembedded image1.73OOembedded image—CH31.74OOembedded image—CH31.75OOembedded image—CH3embedded image
17.0
17.1embedded imageembedded image—CH317.2embedded imageembedded image—CH317.3embedded imageembedded image17.4embedded imageembedded imageembedded image
5.0
5.1embedded imageembedded imageembedded imageembedded image
11.0
11.1OOembedded image—CH3SubstanceR2R4X4X3embedded image
1.0
embedded image
1.1
HHOO
embedded image
1.2
—CH3HOO
embedded image
1.3
HHOO
embedded image
1.4
HHOO
embedded image
1.5
HHOO
embedded image
1.6
HHOO
embedded image
1.7
HHOO
embedded image
1.8
HHOO
embedded image
1.9
HHOO
embedded image
1.10
HHOO
embedded image
1.11
HHOO
embedded image
1.12
HHOO
embedded image
1.13
HHOO
embedded image
1.14
HHOO
embedded image
1.15
HHOO
embedded image
1.16
HHOO
embedded image
1.17
HHOO
embedded image
1.18
HHOO
embedded image
1.19
—CH3HOO
embedded image
1.20
HHOO
embedded image
1.21
HHOO
embedded image
1.22
HHOO
embedded image
1.23
HHOO
embedded image
1.24
HHOO
embedded image
1.25
HHOO
embedded image
1.26
HHOO
embedded image
1.27
HHOO
embedded image
1.28
HHOO
embedded image
1.29
—CH3HOO
embedded image
1.30
HHOO
embedded image
1.31
—CH3HOO
embedded image
1.32
—CH3HOO
embedded image
1.33
—CH3HOO
embedded image
1.34
embedded imageHOO
embedded image
1.35
HHOO
embedded image
1.36
—CH3HOO
embedded image
1.37
HHOO
embedded image
1.38
embedded imageHOO
embedded image
1.39
embedded imageHOO
embedded image
1.40
embedded imageHOO
embedded image
1.41
embedded imageHOO
embedded image
1.42
embedded imageHOO
embedded image
1.43
HHOO
1.44—CH3HOO1.45—CH3HOO1.46—CH3HOO1.47—CH3HOO1.48—CH3HOO1.49—CH3HOO1.50—CF3HOO1.51—CF3HOO1.52—CF3HOO1.53—CF3HOO1.54—CF3HOO1.55—CF3HOO1.56embedded imageHOO1.57embedded imageHOO1.58embedded imageHOO1.59embedded imageHOO1.60embedded imageHOO1.61embedded imageHOO1.62embedded imageHOO1.63embedded imageHOO1.64embedded imageHOO1.65—CH3HOO1.67embedded imageHOO1.68embedded imageHOO1.69embedded imageHOO1.70embedded imageHOO1.71HHNO1.72embedded imageHNO1.73—CH3embedded imageOO1.74embedded imageembedded imageOO1.75embedded imageembedded imageOOembedded image
17.0
17.1—CH3Hembedded image17.2—CH3Hembedded image17.3—CH3Hembedded image17.4—CH3Hembedded imageembedded image
5.0
5.1—CH3HOOembedded image
11.0
11.1—CH3Hembedded imageSubstanceR8R5R6embedded image
1.0
embedded image
1.1
H—CH3H
embedded image
1.2
H—CH3—CH3
embedded image
1.3
H—CH3H
embedded image
1.4
H—CH3H
embedded image
1.5
H—C2H5H
embedded image
1.6
H—CH3H
embedded image
1.7
H—CH3H
embedded image
1.8
H—CH3H
embedded image
1.9
H—CH3H
embedded image
1.10
H—CH3H
embedded image
1.11
H—CH3H
embedded image
1.12
H—CH3H
embedded image
1.13
H—CH3H
embedded image
1.14
H—CH3H
embedded image
1.15
H—CH3H
embedded image
1.16
H—CH3H
embedded image
1.17
H—CH3H
embedded image
1.18
H—CH3H
embedded image
1.19
H—CH3—CH3
embedded image
1.20
H—CH3H
embedded image
1.21
H—CH3H
embedded image
1.22
H—CH3H
embedded image
1.23
H—CH3H
embedded image
1.24
H—CH3H
embedded image
1.25
H—CH3H
embedded image
1.26
H—CH3H
embedded image
1.27
H—CH3H
embedded image
1.28
H—CH3H
embedded image
1.29
H—CH3—CH3
embedded image
1.30
H—CH3H
embedded image
1.31
H—CH3—CH3
embedded image
1.32
H—CH3—CH3
embedded image
1.33
H—CH3—CH3
embedded image
1.34
H—CH3embedded image
embedded image
1.35
H—CH3H
embedded image
1.36
H—CH3—CH3
embedded image
1.37
H—CH3H
embedded image
1.38
H—CH3embedded image
embedded image
1.39
H—CH3embedded image
embedded image
1.40
H—CH3embedded image
embedded image
1.41
H—CH3embedded image
embedded image
1.42
H—CH3embedded image
embedded image
1.43
H—CH3H
1.44H—CH3—CH31.45H—CH3—CH31.46H—CH3—CH31.47H—CH3—CH31.48H—CH3—CH31.49H—CH3—CH31.50H—CH3—CF31.51H—CH3—CF31.52H—CH3—CF31.53H—CH3—CF31.54H—CH3—CF31.55H—CH3—CF31.56H—CH3embedded image1.57H—CH3embedded image1.58H—CH3embedded image1.59H—CH3embedded image1.60H—CH3embedded image1.61H—CH3embedded image1.62H—CH3embedded image1.63H—CH3embedded image1.64H—CH3embedded image1.65H—CH3—CH31.67H—CH3embedded image1.68H—CH3embedded image1.69H—CH3embedded image1.70H—CH3embedded image1.71Hembedded imageH1.72Hembedded imageembedded image1.73embedded image—CH3—CH31.74embedded image—CH3embedded image1.75embedded image—CH3embedded imageembedded image
17.0
17.1H—CH3—CH317.2H—CH3—CH317.3H—CH317.4H—CH3embedded image
5.0
5.1H—CH3—CH3embedded image
11.0
11.1embedded image—CH3—CH3SubstanceR7embedded image
1.0
embedded image
1.1
embedded image
embedded image
1.2
embedded image
embedded image
1.3
embedded image
embedded image
1.4
embedded image
embedded image
1.5
embedded image
embedded image
1.6
embedded image
embedded image
1.7
embedded image
embedded image
1.8
embedded image
embedded image
1.9
embedded image
embedded image
1.10
embedded image
embedded image
1.11
embedded image
embedded image
1.12
embedded image
embedded image
1.13
embedded image
embedded image
1.14
embedded image
embedded image
1.15
embedded image
embedded image
1.16
embedded image
embedded image
1.17
embedded image
embedded image
1.18
embedded image
embedded image
1.19
embedded image
embedded image
1.20
embedded image
embedded image
1.21
embedded image
embedded image
1.22
embedded image
embedded image
1.23
embedded image
embedded image
1.24
embedded image
embedded image
1.25
—C4H9
embedded image
1.26
embedded image
embedded image
1.27
embedded image
embedded image
1.28
embedded image
embedded image
1.29
embedded image
embedded image
1.30
embedded image
embedded image
1.31
embedded image
embedded image
1.32
embedded image
embedded image
1.33
embedded image
embedded image
1.34
embedded image
embedded image
1.35
embedded image
embedded image
1.36
embedded image
embedded image
1.37
embedded image
embedded image
1.38
embedded image
embedded image
1.39
embedded image
embedded image
1.40
embedded image
embedded image
1.41
embedded image
embedded image
1.42
embedded image
embedded image
1.43
embedded image
1.44embedded image1.45embedded image1.46embedded image1.47embedded image1.48embedded image1.49embedded image1.50embedded image1.51embedded image1.52embedded image1.53embedded image1.54embedded image1.55embedded image1.56embedded image1.57embedded image1.58embedded image1.59embedded image1.60embedded image1.61embedded image1.62embedded image1.63embedded image1.64embedded image1.65embedded image1.67embedded image1.68embedded image1.69embedded image1.70embedded image1.71embedded image1.72embedded image1.73embedded image1.74embedded image1.75embedded imageembedded image
17.0
17.1embedded image17.2embedded image17.3embedded image17.4embedded imageembedded image
5.0
5.1embedded imageembedded image
11.0
11.1embedded imageSubstanceX1X2R3embedded image
19.0
embedded image
19.1
OOembedded image
embedded image
19.2
OOembedded image
embedded image
19.3
OOembedded image
embedded image
19.4
OOembedded image
embedded image
19.5
OOembedded image
embedded image
19.6
OOembedded image
embedded image
19.7
OOembedded image
embedded image
19.8
OOembedded image
embedded image
19.9
OOembedded image
embedded image
19.10
OOembedded image
embedded image
19.11
OOembedded image
embedded image
19.12
OOembedded image
19.13OOembedded image19.14OOembedded image19.15OOembedded image19.16OOembedded image19.17OOembedded imageembedded image
7.0
7.1OOembedded image7.2OOembedded imageembedded image
13.0
13.1OOembedded image13.2OOembedded imageSubstanceR2R1R4X4X3R8embedded image
19.0
embedded image
19.1
—CH2HOOH
embedded image
19.2
—CH2HOOH
embedded image
19.3
—CH2HOOH
embedded image
19.4
—CH2HOOH
embedded image
19.5
—CH2HOOH
embedded image
19.6
—CH2HOOH
embedded image
19.7
—CH2HOOH
embedded image
19.8
—CH2HOOH
embedded image
19.9
—CH2HOOH
embedded image
19.10
—CH2HOOH
embedded image
19.11
—CH2HOOH
embedded image
19.12
—CH2HOOH
19.13—CH2HOOH19.14—CH2HOOH19.15—CF2HOOH19.16embedded imageHOOH19.17embedded imageHOOHembedded image
7.0
7.1—CH2HOOH7.2—CH2HNOHembedded image
13.0
13.1embedded image—CH3HNOH13.2embedded image—CH3HNOHSubstanceR6R5R7embedded image
19.0
embedded image
19.1
—CH2embedded image
embedded image
19.2
—CH2embedded image
embedded image
19.3
—CH2embedded image
embedded image
19.4
—CH2embedded image
embedded image
19.5
—CH2embedded image
embedded image
19.6
—CH2embedded image
embedded image
19.7
—CH2embedded image
embedded image
19.8
—CH2embedded image
embedded image
19.9
—CH2embedded image
embedded image
19.10
—CH2embedded image
embedded image
19.11
—CH2embedded image
embedded image
19.12
—CH2embedded image
19.13—CH2embedded image19.14—CH2embedded image19.15—CF2embedded image19.16embedded imageembedded image19.17embedded imageembedded imageembedded image
7.0
7.1—CH3—CH3embedded image7.2embedded image—CH3embedded imageembedded image
13.0
13.1—CH2embedded image13.2—CH2embedded imageSubstanceX1R1X2R2R3R4R5X3X4R6R7embedded image
20.0
20.1O—CH3Oembedded imageH—CH3OOembedded image20.2O—CH3Oembedded imageH—CH3OOembedded image20.3O—CH3Oembedded imageH—CH3OOembedded image20.4O—CH3Oembedded imageH—CH3OOembedded imageembedded image
8.0
8.1O—CH3Oembedded imageH—CH3OO—CH3embedded image8.2O—CH3Oembedded imageH—CH3OOembedded imageembedded image8.3O—CH3Oembedded imageembedded image—CH3OOembedded imageembedded imageSubstanceR8embedded image
20.0
20.1H20.2H20.3H20.4Hembedded image
8.0
8.1H8.2H8.3HSubstanceX1X2R3R2R1R4X4X3R8R6R5R7embedded image
14.0
14.1O—CH3O—CH3embedded imageembedded image—CH3OOembedded imageH14.2O—CH3Oembedded imageembedded imageembedded image—CH3OOembedded imageHSubstanceR1X2X1R4R3R2R5X4X3embedded image
18.0
18.1embedded imageOHembedded image—CH3embedded imageO18.2embedded imageOHembedded image—CH3embedded imageO18.3embedded imageOHembedded image—CH3embedded imageO18.4embedded imageOHembedded image—CH3embedded imageOembedded image
6.0
6.1embedded imageOHembedded image—CH3—CH3OO6.2embedded imageOHembedded imageembedded image—CH3OOembedded image
12.0
12.1—CH3OOHembedded image—CH3embedded imageO12.2—CH3OOHembedded imageembedded imageembedded imageOembedded image
21.0
21.1—CH3OOembedded imageembedded image—CH3OOembedded image
9.0
9.1—CH3OOembedded imageembedded image—CH3OO9.2—CH3OOembedded imageembedded imageembedded imageOembedded image
15.0
15.1embedded imageOHembedded image—CH3OOSubstanceR8R7R6embedded image
18.0
18.1Hembedded image—CH318.2Hembedded image—CH318.3Hembedded image—CH318.4Hembedded image—CH3embedded image
6.0
6.1Hembedded image—CH36.2Hembedded imageembedded imageembedded image
12.0
12.1Hembedded imageH12.2Hembedded image—CH3embedded image
21.0
21.1embedded imageembedded imageembedded image
9.0
9.1Hembedded imageembedded image9.2Hembedded imageembedded imageembedded image
15.0
15.1embedded imageembedded imageSubstanceX2R2R3R4X3R5R6X4R7embedded image
22.0
22.1O—CH3embedded imageembedded image—CH3—CH3Oembedded imageembedded image
10.0
10.1O—CH3embedded imageembedded image—CH3—CH3Oembedded image10.2Oembedded imageembedded image—CH3—CH3Oembedded image
16.0
16.1Oembedded imageHO—CH3—CH3Oembedded imageSubstanceR8X1R1embedded image
22.0
22.1embedded image—CH3embedded image
10.0
10.1HO—CH310.2HO—CH3embedded image
16.0
16.1embedded image—CH3









TABLE 2








2,5-diamino-3,6-dihydroterephthalic acid derivatives




















Substance
X1
X2
R3
R1
R2







embedded image

2.0








embedded image

2.1

O
O


embedded image


—CH3
H







embedded image

2.2

O
O


embedded image


—CH3
—CH3







embedded image

2.3

O
O


embedded image


—CH3
H







embedded image

2.4

O
O


embedded image


—CH3
H







embedded image

2.5

O
O


embedded image


—C2H5
H







embedded image

2.6

O
O


embedded image


—CH3
H







embedded image

2.7

O
O


embedded image


—CH3
H







embedded image

2.8

O
O


embedded image


—CH3
H







embedded image

2.9

O
O


embedded image


—CH3
H







embedded image

2.10

O
O


embedded image


—CH3
H







embedded image

2.11

O
O


embedded image


—CH3
H







embedded image

2.12

O
O


embedded image


—CH3
H







embedded image

2.13

O
O


embedded image


—CH3
H







embedded image

2.14

O
O


embedded image


—CH3
H







embedded image

2.15

O
O


embedded image


—CH3
H







embedded image

2.16

O
O


embedded image


—CH3
H







embedded image

2.17

O
O


embedded image


—CH3
H







embedded image

2.18

O
O


embedded image


—CH3
H







embedded image

2.19

O
O


embedded image


—CH3
—CH3







embedded image

2.20

O
O


embedded image


—CH3
H







embedded image

2.21

O
O


embedded image


—CH3
H







embedded image

2.22

O
O


embedded image


—CH3
H







embedded image

2.24

O
O


embedded image


—CH3
H







embedded image

2.25

O
O
—C4H9
—CH3
H







embedded image

2.26

O
O


embedded image


—CH3
H







embedded image

2.27

O
O


embedded image


—CH3
H







embedded image

2.28

O
O


embedded image


—CH3
H







embedded image

2.29

O
O


embedded image


—CH3
—CH3







embedded image

2.30

O
O


embedded image


—CH3
H







embedded image

2.31

O
O


embedded image


—CH3
—CH3







embedded image

2.32

O
O


embedded image


—CH3
—CH3







embedded image

2.33

O
O


embedded image


—CH3
—CH3







embedded image

2.34

O
O


embedded image


—CH3


embedded image









embedded image

2.35

O
O


embedded image


—CH3
H







embedded image

2.36

O
O


embedded image


—CH3
—CH3







embedded image

2.37

O
O


embedded image


—CH3
H







embedded image

2.38

O
O


embedded image


—CH3


embedded image









embedded image

2.39

O
O


embedded image


—CH3


embedded image









embedded image

2.40

O
O


embedded image


—CH3


embedded image









embedded image

2.41

O
O


embedded image


—CH3


embedded image









embedded image

2.42

O
O


embedded image


—CH3


embedded image









embedded image

2.43

O
O


embedded image


—CH3
H





2.44
O
O


embedded image


—CH3
—CH3





2.45
O
O


embedded image


—CH3
—CH3





2.46
O
O


embedded image


—CH3


embedded image







2.47
O
O


embedded image


—CH3


embedded image







2.48
O
O


embedded image


—CH3
—CH3





2.49
O
O


embedded image


—CH3
—CH3





2.50
O
O


embedded image


—CH3
—CH3





2.51
O
O


embedded image


—CH3
—CH3





2.52
O
O


embedded image


—CH3
—CH3





2.53
O
O


embedded image


—CH3
—CH3





2.54
O
O


embedded image


—CH3
—CF3





2.55
O
O


embedded image


—CH3
—CF3





2.56
O
O


embedded image


—CH3
—CF3





2.57
O
O


embedded image


—CH3
—CF3





2.58
O
O


embedded image


—CH3
—CF3





2.59
O
O


embedded image


—CH3
—CF3





2.60
O
O


embedded image


—CH3


embedded image







2.61
O
O


embedded image


—CH3


embedded image







2.62
O
O


embedded image


—CH3


embedded image







2.63
O
O


embedded image


—CH3


embedded image







2.64
O
O


embedded image


—CH3


embedded image







2.65
O
O


embedded image


—CH3


embedded image







2.66
O
O


embedded image


—CH3


embedded image







2.67
O
O


embedded image


—CH3


embedded image







2.68
O
O


embedded image


—CH3


embedded image







2.69
O
O


embedded image


—CH3
—CH3





2.70
O
O


embedded image


—CH3


embedded image







2.71
O
O


embedded image


—CH3


embedded image







2.72
O
O


embedded image


—CH3


embedded image







2.73




embedded image


—CH3


embedded image







2.74
O
N


embedded image




embedded image


H





2.75
O
N


embedded image




embedded image




embedded image







2.76
O
O


embedded image


—CH3
—CH3





2.78
O
O


embedded image


—CH3


embedded image







2.79
O
O


embedded image


—CH3


embedded image



















Substance
R4′
R4′
X4
X3
R8
R8′
R5







embedded image

2.0








embedded image

2.1

H
H
O
O
H
H
—CH3







embedded image

2.2

H
H
O
O
H
H
—CH3







embedded image

2.3

H
H
O
O
H
H
—CH3







embedded image

2.4

H
H
O
O
H
H
—CH3







embedded image

2.5

H
H
O
O
H
H
—CH3







embedded image

2.6

H
H
O
O
H
H
—CH3







embedded image

2.7

H
H
O
O
H
H
—CH3







embedded image

2.8

H
H
O
O
H
H
—CH3







embedded image

2.9

H
H
O
O
H
H
—CH3







embedded image

2.10

H
H
O
O
H
H
—CH3







embedded image

2.11

H
H
O
O
H
H
—CH3







embedded image

2.12

H
H
O
O
H
H
—CH3







embedded image

2.13

H
H
O
O
H
H
—CH3







embedded image

2.14

H
H
O
O
H
H
—CH3







embedded image

2.15

H
H
O
O
H
H
—CH3







embedded image

2.16

H
H
O
O
H
H
—CH3







embedded image

2.17

H
H
O
O
H
H
—CH3







embedded image

2.18

H
H
O
O
H
H
—CH3







embedded image

2.19

H
H
O
O
H
H
—CH3







embedded image

2.20

H
H
O
O
H
H
—CH3







embedded image

2.21

H
H
O
O
H
H
—CH3







embedded image

2.22

H
H
O
O
H
H
—CH3







embedded image

2.24

H
H
O
O
H
H
—CH3







embedded image

2.25

H
H
O
O
H
H
—CH3







embedded image

2.26

H
H
O
O
H
H
—CH3







embedded image

2.27

H
H
O
O
H
H
—CH3







embedded image

2.28

H
H
O
O
H
H
—CH3







embedded image

2.29

H
H
O
O
H
H
—CH3







embedded image

2.30

H
H
O
O
H
H
—CH3







embedded image

2.31

H
H
O
O
H
H
—CH3







embedded image

2.32

H
H
O
O
H
H
—CH3







embedded image

2.33

H
H
O
O
H
H
—CH3







embedded image

2.34

H
H
O
O
H
H
—CH3







embedded image

2.35

H
H
O
O
H
H
—CH3







embedded image

2.36

H
H
O
O
H
H
—CH3







embedded image

2.37

H
H
O
O
H
H
—CH3







embedded image

2.38

H
H
O
O
H
H
—CH3







embedded image

2.39

H
H
O
O
H
H
—CH3







embedded image

2.40

H
H
O
O
H
H
—CH3







embedded image

2.41

H
H
O
O
H
H
—CH3







embedded image

2.42

H
H
O
O
H
H
—CH3







embedded image

2.43

H
H
O
O
H
H
—CH3





2.44
F
F
O
O
F
F
—CH3





2.45
F
F
O
O
F
F
—CH3





2.46
F
F
O
O
F
F
—CH3





2.47
F
F
O
O
F
F
—CH3





2.48
H
H
O
O
H
H
—CH3





2.49
H
H
O
O
H
H
—CH3





2.50
H
H
O
O
H
H
—CH3





2.51
H
H
O
O
H
H
—CH3





2.52
H
H
O
O
H
H
—CH3





2.53
H
H
O
O
H
H
—CH3





2.54
H
H
O
O
H
H
—CH3





2.55
H
H
O
O
H
H
—CH3





2.56
H
H
O
O
H
H
—CH3





2.57
H
H
O
O
H
H
—CH3





2.58
H
H
O
O
H
H
—CH3





2.59
H
H
O
O
H
H
—CH3





2.60
H
H
O
O
H
H
—CH3





2.61
H
H
O
O
H
H
—CH3





2.62
H
H
O
O
H
H
—CH3





2.63
H
H
O
O
H
H
—CH3





2.64
H
H
O
O
H
H
—CH3





2.65
H
H
O
O
H
H
—CH3





2.66
H
H
O
O
H
H
—CH3





2.67
H
H
O
O
H
H
—CH3





2.68
H
H
O
O
H
H
—CH3





2.69
H
H
O
O
H
H
—CH3





2.70
H
H
O
O
H
H
—CH3





2.71
H
H
O
O
H
H
—CH3





2.72
H
H
O
O
H
H
—CH3





2.73
H
H
O
O
H
H
—CH3





2.74
H
H
N
O
H
H


embedded image







2.75
H
H
N
O
H
H


embedded image







2.76


embedded image




embedded image


O
O


embedded image




embedded image


—CH3





2.78


embedded image




embedded image


O
O


embedded image




embedded image


—CH3





2.79


embedded image




embedded image


O
O


embedded image




embedded image


—CH3














Substance
R6
R7









embedded image

2.0










embedded image

2.1

H


embedded image











embedded image

2.2

—CH3


embedded image











embedded image

2.3

H


embedded image











embedded image

2.4

H


embedded image











embedded image

2.5

H


embedded image











embedded image

2.6

H


embedded image











embedded image

2.7

H


embedded image











embedded image

2.8

H


embedded image











embedded image

2.9

H


embedded image











embedded image

2.10

H


embedded image











embedded image

2.11

H


embedded image











embedded image

2.12

H


embedded image











embedded image

2.13

H


embedded image











embedded image

2.14

H


embedded image











embedded image

2.15

H


embedded image











embedded image

2.16

H


embedded image











embedded image

2.17

H


embedded image











embedded image

2.18

H


embedded image











embedded image

2.19

—CH3


embedded image











embedded image

2.20

H


embedded image











embedded image

2.21

H


embedded image











embedded image

2.22

H


embedded image











embedded image

2.24

H


embedded image











embedded image

2.25

H
—C4H9









embedded image

2.26

H


embedded image











embedded image

2.27

H


embedded image











embedded image

2.28

H


embedded image











embedded image

2.29

—CH3


embedded image











embedded image

2.30

H


embedded image











embedded image

2.31

—CH3


embedded image











embedded image

2.32

—CH3


embedded image











embedded image

2.33

—CH3


embedded image











embedded image

2.34



embedded image




embedded image











embedded image

2.35

H


embedded image











embedded image

2.36

—CH3


embedded image











embedded image

2.37

H


embedded image











embedded image

2.38



embedded image




embedded image











embedded image

2.39



embedded image




embedded image











embedded image

2.40



embedded image




embedded image











embedded image

2.41



embedded image




embedded image











embedded image

2.42



embedded image




embedded image











embedded image

2.43

H


embedded image









2.44
—CH3


embedded image









2.45
—CH3


embedded image









2.46


embedded image




embedded image









2.47


embedded image




embedded image









2.48
—CH3


embedded image









2.49
—CH3


embedded image









2.50
—CH3


embedded image









2.51
—CH3


embedded image









2.52
—CH3


embedded image









2.53
—CH3


embedded image









2.54
—CF3


embedded image









2.55
—CF3


embedded image









2.56
—CF3


embedded image









2.57
—CF3


embedded image









2.58
—CF3


embedded image









2.59
—CF3


embedded image









2.60


embedded image




embedded image









2.61


embedded image




embedded image









2.62


embedded image




embedded image









2.63


embedded image




embedded image









2.64


embedded image




embedded image









2.65


embedded image




embedded image









2.66


embedded image




embedded image









2.67


embedded image




embedded image









2.68


embedded image




embedded image









2.69
—CH3


embedded image









2.70


embedded image




embedded image









2.71


embedded image




embedded image









2.72


embedded image




embedded image









2.73


embedded image




embedded image









2.74
H


embedded image









2.75


embedded image




embedded image









2.76
—CH3


embedded image









2.78


embedded image




embedded image









2.79


embedded image




embedded image



















Substance
X1
X2
R3
R1
R2
R4







embedded image

37.0
























37.1


embedded image




embedded image


—CH3
—CH3
H





37.2


embedded image




embedded image




embedded image


—CH3
H





37.3


embedded image




embedded image



—CH3
H





37.4


embedded image




embedded image



—CH3
H







embedded image

23.0






23.1


embedded image




embedded image




embedded image


—CH3
H







embedded image

30.0


























30.1
O
O


embedded image


—CH3
—CH3
H


















Substance
X4
X3
R8
R5
R6
R7
R4′
R8′







embedded image

37.0




























37.1


embedded image


H
—CH3
—CH3


embedded image


H
H





37.2


embedded image


H


embedded image


—CH3


embedded image


H
H





37.3


embedded image


H

—CH3


embedded image


H
H





37.4


embedded image


H

—CH3


embedded image


H
H







embedded image

23.0






























23.1
O
O
H
—CH3
—CH3


embedded image


H
H







embedded image

30.0




























30.1


embedded image




embedded image


—CH3
—CH3


embedded image


H


embedded image




















Substance
X1
X2
R3
R2
R1
R4
X4
X3







embedded image

39.0








embedded image

39.1

O
O


embedded image


—CH2

H
O
O







embedded image

39.2

O
O


embedded image


—CH2

H
O
O







embedded image

39.3

O
O


embedded image


—CH2

H
O
O







embedded image

39.4

O
O


embedded image


—CH2

H
O
O







embedded image

39.5

O
O


embedded image


—CH2

H
O
O







embedded image

39.6

O
O


embedded image


—CH2

H
O
O







embedded image

39.7

O
O


embedded image


—CH2

H
O
O







embedded image

39.8

O
O


embedded image


—CH2

H
O
O







embedded image

39.9

O
O


embedded image


—CH2

H
O
O







embedded image

39.10

O
O


embedded image


—CH2

H
O
O







embedded image

39.11

O
O


embedded image


—CH2

H
O
O







embedded image

39.12

O
O


embedded image


—CH3

H
O
O





39.13
O
O


embedded image


—CH2

H
O
O





39.14
O
O


embedded image


—CH2

H
O
O





39.15
O
O


embedded image


—CF2

H
O
O





39.16
O
O


embedded image




embedded image



H
O
O





39.17
O
O


embedded image




embedded image



H
O
O





39.18
O
O


embedded image


—CH2

H
O
O





39.19
O
O


embedded image


—CH2

H
O
O





39.20
O
O


embedded image


—CF2

H
O
O





39.21
O
O


embedded image




embedded image



H
O
O





39.22
O
O


embedded image




embedded image



H
O
O







embedded image

25.0




























25.1
O
O


embedded image


—CH2
H
O
O





25.2
O
O


embedded image


—CH2
H
N
O







embedded image

32.0






























32.1
O
O


embedded image




embedded image


—CH3
H
N
O





32.2
O
O


embedded image




embedded image


—CH3
H
N
O


















Substance
R8
R6
R5
R7
R4′
R8′









embedded image

39.0










embedded image

39.1

H
—CH2



embedded image


H
H









embedded image

39.2

H
—CH2



embedded image


H
H









embedded image

39.3

H
—CH2



embedded image


H
H









embedded image

39.4

H
—CH2



embedded image


H
H









embedded image

39.5

H
—CH2



embedded image


H
H









embedded image

39.6

H
—CH2



embedded image


H
H









embedded image

39.7

H
—CH2



embedded image


H
H









embedded image

39.8

H
—CH2



embedded image


H
H









embedded image

39.9

H
—CH2



embedded image


H
H









embedded image

39.10

H
—CH2



embedded image


H
H









embedded image

39.11

H
—CH2



embedded image


H
H









embedded image

39.12

H
—CH2



embedded image


H
H







39.13
H
—CH2



embedded image


H
H







39.14
H
—CH2



embedded image


H
H







39.15
H
—CF2



embedded image


H
H







39.16
H


embedded image





embedded image


H
H







39.17
H


embedded image





embedded image


H
H







39.18
H
—CH2



embedded image


H
H







39.19
H
—CH2



embedded image


H
H







39.20
H
—CF2



embedded image


H
H







39.21
H


embedded image





embedded image


H
H







39.22
H


embedded image





embedded image


H
H









embedded image

25.0








25.1
H
—CH3
—CH3


embedded image


H
H







25.2
H


embedded image


—CH3


embedded image


H
H









embedded image

32.0




























32.1
H
—CH2


embedded image


H
H







32.2
H
—CH2


embedded image


H
H























Substance
X1
R1
X2
R2
R3
R4
R5
X3
X4
R6
R7
R8







embedded image

40.0


































40.1
O
—CH3
O


embedded image


H
—CH3
O
O


embedded image


H





40.2
O
—CH3
O


embedded image


H
—CH3
O
O


embedded image


H





40.3
O
—CH3
O


embedded image


H
—CH3
O
O


embedded image


H





40.4
O
—CH3
O


embedded image


H
—CH3
O
O


embedded image


H







embedded image

26.0




































26.1
O
—CH3
O


embedded image


H
—CH3
O
O
—CH3


embedded image


H





26.2
O
—CH3
O


embedded image


H
—CH3
O
O


embedded image




embedded image


H





26.3
O
—CH3
O


embedded image




embedded image


—CH3
O
O


embedded image




embedded image


H














Substance
R4′
R8′









embedded image

40.0








40.1
H
H







40.2
H
H







40.3
H
H







40.4
H
H









embedded image

26.0








26.1
H
H







26.2
H
H







26.3


embedded image


H

























Substance
X1
R1
X2
R4
R2
R3
R5
X3
X4
R6
R7
R8
R4′
R8′







embedded image

33.0








































33.1
O
—CH3
O
—CH3


embedded image




embedded image


—CH3
O
O


embedded image


H
—CH3
H





33.2
O
—CH3
O


embedded image




embedded image




embedded image


—CH3
O
O


embedded image


H


embedded image


H
























Substance
R1
X2
X1
R4
R3
R2
R5
X4
X3
R8
R7
R6
R4′
R8′







embedded image

38.0






































38.1


embedded image


O
H


embedded image


—CH3


embedded image


O
H


embedded image


—CH3
H
H





38.2


embedded image


O
H


embedded image


—CH3


embedded image


O
H


embedded image


—CH3
H
H





38.3


embedded image


O
H


embedded image


—CH3


embedded image


O
H


embedded image


—CH3
H
H





38.4


embedded image


O
H


embedded image


—CH3


embedded image


O
H


embedded image


—CH3
H
H







embedded image

24.0








































24.1


embedded image


O
H


embedded image


—CH3
—CH3
O
O
H


embedded image


—CH3
H
H





24.2


embedded image


O
H


embedded image




embedded image


—CH3
O
O
H


embedded image




embedded image


H
H







embedded image

31.0








































31.1
—CH3
O
O
H


embedded image


—CH3


embedded image


O
H


embedded image


H
H
H





31.2
—CH3
O
O
H


embedded image




embedded image




embedded image


O
H


embedded image


—CH3
H
H
























Substance
R1
X2
X1
R4′
R3
R2
R5
X4
X3
R8′
R7
R6
R4
R8







embedded image

41.0






































41.1
—CH3
O
O


embedded image




embedded image


—CH3
O
O


embedded image




embedded image


H
H







embedded image

27.0








































27.1
—CH3
O
O


embedded image




embedded image


—CH3
O
O
H


embedded image




embedded image


H
H





































27.2
—CH3
O
O


embedded image




embedded image




embedded image


O
H


embedded image




embedded image


H
H
























Substance
R1
X2
X1
R4
R3
R2
R5
X4
X3
R5
R7
R8′
R4′
R8







embedded image

34.0






































34.1


embedded image


O
H


embedded image


—CH3
—CH3
O
O


embedded image




embedded image


H
H






















Substance
X2
R2
R3
R4
X3
R5
R6
X4
R7
R8
X1
R1







embedded image

43.0


































43.1
O
—CH3


embedded image




embedded image


—CH3
—CH3
O


embedded image




embedded image


—CH3







embedded image

29.0




































29.1
O
—CH3


embedded image




embedded image


—CH3
—CH3
O


embedded image


H
O
—CH3

































29.2
O


embedded image




embedded image


—CH3
—CH3
O

H
O
—CH3







embedded image

36.0


































36.1
O


embedded image


H
O
—CH3
—CH3
O


embedded image




embedded image


—CH3














Substance
R4′
R8′









embedded image

43.0








43.1
—CH3
—CH3









embedded image

29.0








29.1
—CH3
—CH3







29.2
H
H









embedded image

36.0








36.1
H
H

















TABLE 3








Substituted 2,5-diaminoterephthalic acid dinitriles





















Substance
R3
R2
R4
R8
R6
R7





























embedded image


3.0







embedded image


3.1


embedded image


H
H
H
H


embedded image









embedded image


3.2


embedded image


—CH3
H
H
—CH3


embedded image









embedded image


3.3


embedded image


H
H
H
H


embedded image









embedded image


3.4


embedded image


H
H
H
H


embedded image









embedded image


3.5


embedded image


H
H
H
H


embedded image









embedded image


3.6


embedded image


H
H
H
H


embedded image









embedded image


3.7


embedded image


H
H
H
H


embedded image









embedded image


3.8


embedded image


H
H
H
H


embedded image









embedded image


3.9


embedded image


H
H
H
H


embedded image









embedded image


3.10


embedded image


H
H
H
H


embedded image









embedded image


3.11


embedded image


H
H
H
H


embedded image









embedded image


3.12


embedded image


H
H
H
H


embedded image









embedded image


3.13


embedded image


H
H
H
H


embedded image









embedded image


3.14


embedded image


H
H
H
H


embedded image









embedded image


3.15


embedded image


H
H
H
H


embedded image









embedded image


3.16


embedded image


H
H
H
H


embedded image









embedded image


3.17


embedded image


—CH3
H
H
—CH3


embedded image









embedded image


3.18


embedded image


H
H
H
H


embedded image









embedded image


3.19


embedded image


H
H
H
H


embedded image









embedded image


3.20


embedded image


H
H
H
H


embedded image









embedded image


3.21


embedded image


H
H
H
H


embedded image









embedded image


3.22
—C4H9
H
H
H
H
—C4H9







embedded image


3.23


embedded image


H
H
H
H


embedded image









embedded image


3.24


embedded image


H
H
H
H


embedded image









embedded image


3.25


embedded image


H
H
H
H


embedded image









embedded image


3.26


embedded image


—CH3
H
H
—CH3


embedded image









embedded image


3.27


embedded image


H
H
H
H


embedded image









embedded image


3.28


embedded image


—CH3
H
H
—CH3


embedded image









embedded image


3.29


embedded image


—CH3
H
H
—CH3


embedded image









embedded image


3.30


embedded image


—CH3
H
H
—CH3


embedded image









embedded image


3.31


embedded image




embedded image


H
H


embedded image




embedded image









embedded image


3.32


embedded image


H
H
H
H


embedded image









embedded image


3.33


embedded image


—CH3
H
H
—CH3


embedded image









embedded image


3.34


embedded image


H
H
H
H


embedded image









embedded image


3.35


embedded image




embedded image


H
H


embedded image




embedded image









embedded image


3.36


embedded image




embedded image


H
H


embedded image




embedded image









embedded image


3.37


embedded image




embedded image


H
H


embedded image




embedded image









embedded image


3.38


embedded image




embedded image


H
H


embedded image




embedded image









embedded image


3.39


embedded image




embedded image


H
H


embedded image




embedded image









embedded image


3.40


embedded image


H
H
H
H


embedded image








3.41


embedded image


—CH3
H
H
—CH3


embedded image








3.42


embedded image


—CH3
H
H
—CH3


embedded image








3.43


embedded image


—CH3
H
H
—CH3


embedded image








3.44


embedded image


—CH3
H
H
—CH3


embedded image








3.45


embedded image


—CH3
H
H
—CH3


embedded image








3.46


embedded image


—CH3
H
H
—CH3


embedded image








3.47


embedded image


—CF3
H
H
—CF3


embedded image








3.48


embedded image


—CF3
H
H
—CF3


embedded image








3.49


embedded image


—CF3
H
H
—CF3


embedded image








3.50


embedded image


—CF3
H
H
—CF3


embedded image








3.51


embedded image


—CF3
H
H
—CF3


embedded image








3.52


embedded image


—CF3
H
H
—CF3


embedded image








3.53


embedded image




embedded image


H
H


embedded image




embedded image








3.54


embedded image




embedded image


H
H


embedded image




embedded image








3.55


embedded image




embedded image


H
H


embedded image




embedded image








3.56


embedded image




embedded image


H
H


embedded image




embedded image








3.57


embedded image




embedded image


H
H


embedded image




embedded image








3.58


embedded image




embedded image


H
H


embedded image




embedded image








3.59


embedded image




embedded image


H
H


embedded image




embedded image








3.60


embedded image




embedded image


H
H


embedded image




embedded image








3.61


embedded image




embedded image


H
H


embedded image




embedded image








3.62


embedded image


—CH3
H
H
—CH3


embedded image








3.63


embedded image




embedded image


H
H


embedded image




embedded image








3.64


embedded image




embedded image


H
H


embedded image




embedded image








3.65


embedded image




embedded image


H
H


embedded image




embedded image








3.66


embedded image




embedded image


H
H


embedded image




embedded image








3.67


embedded image


H
H
H
H


embedded image








3.68


embedded image




embedded image


H
H


embedded image




embedded image








3.69


embedded image


—CH3


embedded image




embedded image


—CH3


embedded image








3.70


embedded image




embedded image




embedded image




embedded image




embedded image




embedded image








3.71


embedded image




embedded image




embedded image




embedded image




embedded image




embedded image


















Substance
R2
R3
R4
R6
R7
R8

























embedded image


48.0






48.1


embedded image


H


embedded image


H






48.2


embedded image


H


embedded image


H






48.3


embedded image


H


embedded image


H






48.4


embedded image


H


embedded image


H







embedded image


44.0


























44.1


embedded image


H
—CH3


embedded image


H






44.2


embedded image


H


embedded image




embedded image


H






44.3


embedded image




embedded image




embedded image




embedded image


H
















Substance
R8
R2
R3
R6
R7
R4



























embedded image


46.0






46.1
H
—CH3


embedded image




embedded image


H






46.2
H


embedded image




embedded image




embedded image


H
















Substance
R4
R3
R2
R8
R7
R6

























embedded image


49.0






49.1


embedded image




embedded image




embedded image




embedded image









embedded image


45.0


























45.1


embedded image




embedded image


H


embedded image




embedded image









embedded image


47.0


























47.1
H


embedded image





embedded image




embedded image


















TABLE 4








Substituted 2,5-diamino-3,6-dihydroterephthalic acid dinitriles
























Substance

R3
R2
R4
R4
R8
R8
R6
R7







embedded image


4.0


—CH3
—CH3
—CH3
—CH3







embedded image


4.1


embedded image


H
—CH3
—CH3
—CH3
—CH3
H


embedded image









embedded image


4.2


embedded image


—CH3
—CH3
—CH3
—CH3
—CH3
—CH3


embedded image









embedded image


4.3


embedded image


H
—CH3
—CH3
—CH3
—CH3
H


embedded image















Substance

R3
R2







embedded image


4.4


embedded image


H







embedded image


4.5


embedded image


H







embedded image


4.6


embedded image


H







embedded image


4.7


embedded image


H







embedded image


4.8


embedded image


H







embedded image


4.9


embedded image


H







embedded image


4.10


embedded image


H







embedded image


4.11


embedded image


H







embedded image


4.12


embedded image


H







embedded image


4.13


embedded image


H







embedded image


4.14


embedded image


H







embedded image


4.15


embedded image


H







embedded image


4.16


embedded image


H







embedded image


4.17


embedded image


—CH3







embedded image


4.18


embedded image


H







embedded image


4.19


embedded image


H







embedded image


4.20


embedded image


H







embedded image


4.21


embedded image


H







embedded image


4.22
—C4H9
H







embedded image


4.23


embedded image


H







embedded image


4.24


embedded image


H







embedded image


4.25


embedded image


H







embedded image


4.26


embedded image


—CH3







embedded image


4.27


embedded image


H







embedded image


4.28


embedded image


—CH3







embedded image


4.29


embedded image


—CH3







embedded image


4.30


embedded image


—CH3







embedded image


4.31


embedded image




embedded image









embedded image





embedded image


H







embedded image


4.32


embedded image


—CH3







embedded image


4.33


embedded image


H







embedded image


4.34


embedded image




embedded image









embedded image


4.35


embedded image




embedded image









embedded image


4.36


embedded image




embedded image









embedded image


4.37


embedded image




embedded image









embedded image


4.38


embedded image




embedded image









embedded image


4.39


embedded image


H






4.40


embedded image


—CH3






4.41


embedded image


—CH3






4.42


embedded image


—CH3






4.43


embedded image


—CH3






4.44


embedded image


—CH3






4.45


embedded image


—CH3






4.46


embedded image


—CF3






4.47


embedded image


—CF3






4.48


embedded image


—CF3






4.49


embedded image


—CF3






4.50


embedded image


—CF3






4.51


embedded image


—CF3






4.52


embedded image




embedded image








4.53


embedded image




embedded image








4.54


embedded image




embedded image








4.55


embedded image




embedded image








4.56


embedded image




embedded image








4.57


embedded image




embedded image








4.58


embedded image




embedded image








4.59


embedded image




embedded image








4.60


embedded image




embedded image








4.61


embedded image


—CH3






4.62


embedded image




embedded image








4.63


embedded image




embedded image








4.64


embedded image




embedded image








4.65


embedded image




embedded image








4.66


embedded image


H






4.67


embedded image




embedded image








4.68


embedded image


—CH3






4.69


embedded image




embedded image








4.70


embedded image




embedded image
















Substance

R4
R8
R6







embedded image


4.4
—CH3
—CH3
H







embedded image


4.5
—CH3
—CH3
H







embedded image


4.6
—CH3
—CH3
H







embedded image


4.7
—CH3
—CH3
H







embedded image


4.8
—CH3
—CH3
H







embedded image


4.9
—CH3
—CH3
H







embedded image


4.10
—CH3
—CH3
H







embedded image


4.11
—CH3
—CH3
H







embedded image


4.12
—CH3
—CH3
H







embedded image


4.13
—CH3
—CH3
H







embedded image


4.14
—CH3
—CH3
H







embedded image


4.15
—CH3
—CH3
H







embedded image


4.16
—CH3
—CH3
H







embedded image


4.17
—CH3
—CH3
—CH3







embedded image


4.18
—CH3
—CH3
H







embedded image


4.19
—CH3
—CH3
H







embedded image


4.20
—CH3
—CH3
H







embedded image


4.21
—CH3
—CH3
H







embedded image


4.22
—CH3
—CH3
H







embedded image


4.23
—CH3
—CH3
H







embedded image


4.24
—CH3
—CH3
H







embedded image


4.25
—CH3
—CH3
H







embedded image


4.26
—CH3
—CH3
—CH3







embedded image


4.27
—CH3
—CH3
H







embedded image


4.28
—CH3
—CH3
—CH3







embedded image


4.29
—CH3
—CH3
—CH3







embedded image


4.30
—CH3
—CH3
—CH3







embedded image


4.31
—CH3
—CH3


embedded image









embedded image



—CH3
—CH3
H







embedded image


4.32
—CH3
—CH3
—CH3







embedded image


4.33
—CH3
—CH3
H







embedded image


4.34
—CH3
—CH3


embedded image









embedded image


4.35
—CH3
—CH3


embedded image









embedded image


4.36
—CH3
—CH3


embedded image









embedded image


4.37
—CH3
—CH3


embedded image









embedded image


4.38
—CH3
—CH3


embedded image









embedded image


4.39
—CH3
—CH3
H






4.40
—CH3
—CH3
—CH3



4.41
—CH3
—CH3
—CH3



4.42
—CH3
—CH3
—CH3



4.43
—CH3
—CH3
—CH3



4.44
—CH3
—CH3
—CH3



4.45
—CH3
—CH3
—CH3



4.46
—CH3
—CH3
—CF3



4.47
—CH3
—CH3
—CF3



4.48
—CH3
—CH3
—CF3



4.49
—CH3
—CH3
—CF3



4.50
—CH3
—CH3
—CF3



4.51
—CH3
—CH3
—CF3






4.52
—CH3
—CH3


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4.53
—CH3
—CH3


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4.54
—CH3
—CH3


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4.55
—CH3
—CH3


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4.56
—CH3
—CH3


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4.57
—CH3
—CH3


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4.58
—CH3
—CH3


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4.59
—CH3
—CH3


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4.60
—CH3
—CH3


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4.61
—CH3
H
—CH3






4.62
—CH3
H


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4.63
—CH3
H


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4.64
—CH3
H


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4.65
—CH3
H


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4.66
—CH3
H
H






4.67
—CH3
H


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4.68


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—CH3






4.69


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4.70


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Substance

R7
R4
R8









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4.4


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—CH3
—CH3









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4.5


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—CH3
—CH3









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4.6


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—CH3
—CH3









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4.7


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—CH3
—CH3









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4.8


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—CH3
—CH3









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4.9


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—CH3
—CH3









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4.10


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—CH3
—CH3









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4.11


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—CH3
—CH3









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4.12


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—CH3
—CH3









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4.13


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—CH3
—CH3









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4.14


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—CH3
—CH3









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4.15


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—CH3
—CH3









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4.16


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—CH3
—CH3









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4.17


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—CH3
—CH3









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4.18


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—CH3
—CH3









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4.19


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—CH3
—CH3









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4.20


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—CH3
—CH3









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4.21


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—CH3
—CH3









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4.22
—C4H9
—CH3
—CH3









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4.23


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—CH3
—CH3









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4.24


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—CH3
—CH3









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4.25


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—CH3
—CH3









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4.26


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—CH3
—CH3









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4.27


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—CH3
—CH3









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4.28


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—CH3
—CH3









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4.29


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—CH3
—CH3









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4.30


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—CH3
—CH3









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4.31


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—CH3
—CH3









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—CH3
—CH3









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4.32


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—CH3
—CH3









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4.33


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—CH3
—CH3









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4.34


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—CH3
—CH3









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4.35


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—CH3
—CH3









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4.36


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—CH3
—CH3









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4.37


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—CH3
—CH3









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4.38


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—CH3
—CH3









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4.39


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—CH3
—CH3








4.40


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—CH3
—CH3








4.41


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—CH3
—CH3








4.42


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—CH3
—CH3








4.43


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—CH3
—CH3








4.44


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—CH3
—CH3








4.45


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—CH3
—CH3








4.46


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—CH3
—CH3








4.47


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—CH3
—CH3








4.48


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—CH3
—CH3








4.49


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—CH3
—CH3








4.50


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—CH3
—CH3








4.51


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—CH3
—CH3








4.52


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—CH3
—CH3








4.53


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—CH3
—CH3








4.54


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—CH3
—CH3








4.55


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—CH3
—CH3








4.56


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—CH3
—CH3








4.57


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—CH3
—CH3








4.58


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—CH3
—CH3








4.59


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—CH3
—CH3








4.60


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—CH3
—CH3








4.61


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—CH3
—CH3








4.62


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—CH3
—CH3








4.63


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—CH3
—CH3








4.64


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—CH3
—CH3








4.65


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—CH3
—CH3








4.66


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—CH3
—CH3








4.67


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—CH3
—CH3








4.68


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—CH3
—CH3








4.69


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—CH3
—CH3








4.70


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—CH3
—CH3




















Substance

R2
R3
R4
R6
R7
R8
R8
R4







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56.0




























56.1


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—CH3


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—CH3
—CH3
—CH3






56.2


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—CH3


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—CH3
—CH3
—CH3






56.3


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—CH3


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—CH3
—CH3
—CH3






56.4


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—CH3


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—CH3
—CH3
—CH3



















Substance

R2
R3
R6
R7
R8
R8
R4
R4







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50.0






























50.1


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—CH3


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—CH3
—CH3
—CH3
—CH3






50.2


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—CH3
—CH3
—CH3
—CH3






50.3


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—CH3


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—CH3



















Substance

R8
R8
R3
R6
R7
R4
R4
R2







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53.0






























53.1
—CH3
—CH3


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—CH3
—CH3
—CH3






53.2
—CH3
—CH3


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—CH3
—CH3


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Substance

R4
R3
R2
R8
R7
R6
R4
R8







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57.0




























57.1


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—CH3
—CH3







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51.0






























51.1


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H


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—CH3
—CH3



















Substance

R4
R4
R3
R2
R6
R7
R8
R8







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54.0






























54.1
—CH3
—CH3


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—CH3



















Substance

R4
R4
R3
R2
R6
R7
R8
R8







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52.0





























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52.1


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—CH3
—CH3







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55.0





























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55.1
—CH3
—CH3


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58.0





























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58.1


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The new emitters are used in a device comprising or not comprising an electron transport layer, wherein the layers in a device can be arranged as shown in FIG. 2:

  • 1. The substrate consists of a transparent material, e.g. glass;
  • 2. The anode consists of ITO which injects the holes into the hole transport layer;
  • 3./4. The hole conductor mainly consists of triphenylamine derivatives; several hole conductor layers can be provided whose characteristics are adapted to the device;
  • 5. Between the hole conductor and the electron conductor, one or more emitter layers are arranged;
  • 6. The electron conductor can e.g. consist of Alq3 and conducts the electrons from the cathode to the emitting layer or the hole conductor inside the device;
  • 7. The buffer layer consists of certain metal salts or the oxides thereof, e.g. LiF, and improves the electron injection into the layer 6;
  • 8. The cathode consists of a base metal or an alloy (e.g. aluminium or calcium).


Typically, the emitter layers are 3-10 nm thick, preferably 4-6 nm. The emission wavelengths depend on the chemical structure in a characteristic manner, i.e. electronic and steric factors of the molecules obviously influence the wavelength of the emitted light and the performance achieved. The wavelengths of the examples listed in Table 2 range between 538 nm and 618 nm.


In order to achieve mixed colours, the new emitters of formulas 1.0-58.0 can be arranged on top of one another, either in the form of several layers each of which consists of an emitter material in its pure form (FIG. 2) or in the form of one or several layer(s) in which the emitter materials are provided in a mixed form.


The layers comprising the new emitters of formulas 1.0-58.0 can be doped with known emitter materials, as shown in FIG. 1.


The new emitters of formulas 1.0-58.0 can be used in devices comprising hole conductors known per se (59 and 60) and other components. Typical examples are shown in FIGS. 1 and 2.
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4,4′,4″-tris(N-(α-naphthyl)-N-phenylamino)-triphenylamine (1-NAPHDATA)
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N,N′-di(α-naphthyl)-N,N′-diphenylbenzidine (α-NPD)


The devices based on the new emitters can be produced in a manner known per se, i.e. by vacuum deposition at between 1 and 10−9 torrs.


Alternatively, the devices can be produced by solution coating, e.g. web coating or spin coating. Here, the new emitters of formulas 1.0-58.0 can be applied either as the pure substance or as a dopant contained in a suitable polymer.


Surprisingly, it has been found that particularly efficient devices can be produced using substances of the formula 1.0 which have been substituted with fluorine. A remarkably high photometric efficiency is observed in these cases. Using the substance 1.2, a device emitting a spectrally nearly pure green is obtained.


EXPERIMENTAL PART

The following examples are intended to illustrate the invention in more detail, but do by no means limit the same.


Example 1
Substances 2.1, 2.3-2.5



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0.06 mol cyclohexane-2,5-dione-1,4-dicarboxylic acid diester is suspended in a mixture of 200 ml glacial acetic acid and 200 ml alcohol (corresponding to the ester component). In a nitrogen atmosphere, 0.135 mol of a primary amine or aniline is speedily added. The reaction mixture is refluxed for 5-8 hours while stirring thoroughly. Anilines which have been substituted with an acceptor require longer reaction times.


In the case of anilines, the crude product can be isolated by sucking off the cooled-down reaction mixture, thoroughly washing it with methanol and drying.


Aliphatic amines form highly soluble products, i.e. the solvent must be separated almost completely using a rotary evaporator. The crude product is added into methanol, thoroughly cooled, sucked off and dried.


Example 2
Substances 1.1, 1.31.5



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The esters of dihydroterephthalic acid obtained in Example 1 are oxidized. Yields of up to 95% are achieved during isolation. In order to purify the separated crude product, it can be recrystallized from DMF, toluene, chloroform or methanol. The substances obtained are sublimable.


Example 3
Substances 19.1-19.4

The esters obtained according to Example 2 are saponified in mixtures of n-propanol and water. 0.01 mol terephthalic acid diester is suspended in approx. 50 ml n-propanol, and 50 ml water containing 0.03 mol potassium hydroxide is added. The suspension is refluxed until a clear solution is obtained. Once another 2 hours have passed, the liquid is sucked off. In order to neutralize the solution, approx. 5 ml glacial acetic acid is added dropwise. The acid obtained is washed with methanol and dried.


In order to produce the substances 19.1-19.4, 0.01 mol of the terephthalic acid obtained is refluxed for 2 hours in 100 ml glacial acetic acid to which 15 ml formaldehyde solution (37%) has been added.


The reaction products are separated and washed with methanol. They are recrystallized from acetonitrile or chloroform. The substances obtained can be purified by sublimation.


Example 4
Substance 1.2

In order to obtain compounds of this type, the respective terephthalic acid ester (Example 2) can be alkylated. 0.05 mol terephthalic acid ester is suspended in 350 ml anhydrous DMSO, and 18.63 g (0.131 mol) methyl iodide is added. 6.1 g (0.152 mol) 60% sodium hydride in paraffin is added in portions at a temperature ranging between 20 and 23° C. and while stirring throrougly. Once a reaction time of approx. 5 hours has passed, the colour of the solid constitutents has changed from orange to pure yellow. Now, approx. 200 ml methanol is added to the mixture, thereby considerably improving filterability.


The separated yellow reaction product is thoroughly washed with methanol and dried. A pure product is obtained by recrystallization from toluene.


Example 5
Device: Substance 4

A 55 nm thick layer of 4,4′,4″-tris(N-(α-naphthyl)-N-phenylamino)-triphenylamine and another 5 nm thick layer of N,N′-di(α-naphthyl)-N,N′-diphenylbenzidine were deposited onto a structured ITO glass substrate measuring 50×50 mm2. Onto these hole transport layers, 5 nm 1,6-bis(2,4-dimethoxyphenyl)-benzo[1,2-d;4,5-d′]-1,2,6,7-tetrahydro-bis[1,3]oxazine-4,9-dione (19.4) is deposited.


In addition, a 30 nm thick layer of tris-(8-hydroxychinolinato)-aluminium is now applied onto this emitter layer, followed by a very thin buffer layer (0.5 nm) of lithium fluoride and finally aluminium.


The arrangement was tested applying an adjustable voltage between 0 and 15 V. The device emits a wavelength of 578 nm (yellow). A luminance (emission intensity) of 100 cd/m2 was achieved at 5.0 V. The maximum luminance (emission intensity) achieved was 11,400 cd/m2.


Example 6
Device: Substance 1.21

A device was produced according to Example 5, into which a 5 nm thick layer of 2,5-bis-(N-(2,4-dimethoxyphenyl)amino)terephthalic acid diethyl ester was incorporated as emitter substance between the hole conductor and the electron conductor.


The device was also tested applying an adjustable voltage between 0 and 15 V. The device emits a wavelength of 618 nm (red). A luminance (emission intensity) of 100 cd/m2 was achieved at 9.5 V. The maximum luminance (emission intensity) achieved was 644 cd/m2.


Example 7
Device: Substance 1.5

The device has the same structure as those of Examples 5 and 6. The emitter substance used was 2,5-bis-(N-phenylamino)-terephthalic acid diethyl ester.


Once again, the device was tested applying an adjustable voltage between 0 and 15 V. The device emits a yellow light (578 mm). A luminance (emission intensity) of 100 cd/m2 was achieved at 5.6 V. The maximum luminance (emission intensity) recorded was 5,300 cd/m2.


Example 8
Device: Substance 1.2

Analogously to Examples 5-7 and according to the same structural principle, a 5 nm thick layer of N,N′-dimethyl-2,5-bis-(N-(2-fluorophenyl)-amino)terephthalic acid dimethyl ester was deposited onto the hole transport layers.


The arrangement (FIG. 2) was tested applying an adjustable voltage between 0 and 15 V. The device emits a green light (λmax=547 nm). A luminance (emission intensity) of 100 cd/m2 was achieved at 5.4 V. The maximum luminance (emission intensity) achieved was 17,700 cd/m2.

  • 1. The substrate consists of glass;
  • 2. The anode consists of ITO;
  • 3. 1-Naphdata is applied as hole conductor;
  • 4. Another hole conductor layer consists of c-NPD;
  • 5. One or several emitter layers are arranged between the hole conductor and the electron conductor;
  • 6. The electron conductor can e.g. consist of Alq3;
  • 7. The buffer layer consists of LiF;
  • 8. The cathode consists of a base metal or an alloy (e.g. aluminium or calcium). Typically, the emitter layers are 3-10 nm thick, preferably 4-6 nm.


Photometric parameters of selected emitter substances

TABLE 2#1)V2)nmColour3)cd/m24)cd/A5)lm/W 1.219.2629red-white19800.120.07 1.16*)9.3634red-white39900.140.10 1.1614.0618red1440.090.07 1.305.6612orange-red121002.172.2719.45.0578yellow114002.041.72 1.55.6578yellow53001.591.42 1.48.0577yellow14100.810.3719.36.5565yellow-green45300.720.49 1.38.1577yellow-green43302.771.5219.710.2yellow-green4740.260.10 1.343.5550green365001.009.21 1.365.7546green181006.604.34 1.25.4547green177007.704.93 1.386.4546green113004.622.4719.26.6564green60100.890.6619.16.7540green46803.051.7019.68.6545green26100.520.36 1.2911.1564green13301.590.47 1.17.1538green13000.480.22 1.3310.3563green11001.530.54 1.3110.8566green7541.600.5319.813.4green2731.200.7019.1114.4532green1440.030.0119.5>20.0540green80.300.2819.9>15.0544green640.580.13
1)voltage at 100 cd/m2

2)λmax of electroluminescence

3)max. luminance (emission intensity)

4)max. photometric efficiency

5)max. performance efficiency











TABLE 3








Table 3#
λmax (solid)
λem (solid)

















1.6

614


1.7

597


1.8

604


1.10

626


1.11

596


1.12

586


1.1

547


1.13

559


1.14

543


1.15

605


1.16
500
635


1.17

596


1.18

617


1.19
435
531


1.4

599


1.20

596


19.1
475
564


19.4
460
598


1.5
465
582


1.21
495
625


19.5

612


1.23

573


1.24

564


1.25

605


1.26

602


19.3

582


1.6

623


19.6

592


1.28

588


1.3

595


1.24

612


19.8
453
583


1.2

558


1.5
496
622







λmax: absorption maximum





λem: emission maximum





λell: maximum of electroluminescence














TABLE 4










Absorbance coefficients ε of selected emitter substances










#
λmax (nm)
ε (l · mol−1 cm−1)
Solvent













1.16
489
6000
CHCl3


1.5
469
6640
CHCl3


1.34
403
4744
NMP


19.6
452
5250
CHCl3


19.5
474
4670
CHCl3


19.7
433
5450
NMP


1.17
472
6410
CHCl3


1.15
486
5930
CHCl3


1.12
460
5930
CHCl3


1.11
481
6840
CHCl3


1.8
472
6450
CHCl3


1.7
474
6550
CHCl3


19.1
434
4700
NMP


1.30
493
5450
NMP


1.27
482
6800
CHCl3



















TABLE 5











Absorption maxima of selected




emitter substances in solution#
λmax (NMP)



















1.6
482



1.7
476



1.8
463



1.9
652



1.10
509



1.11
475



1.12
445



1.1
413



1.13
427



1.14
428



1.15
482



1.16
494



1.17
464



1.18
464



1.19
417



1.4
468



1.20
461



19.1
435



19.4
458



1.5
451



1.21
479



1.22
505



19.5
472



1.23
432



1.24
446



1.25
487



1.26
482



19.3
447



1.6
481



19.6
452



1.28
473



1.3
451



1.24
480



1.30
493



1.34
403



1.5
461



1.43
496




















TABLE 6











DSC values of selected




emitter substances#
DSC peak in ° C.



















19.3
260.0



1.6
269.1



1.7
171.3



1.8
227.8



1.11
192.1



1.12
172.2



1.15
232.0



1.17
166.5



19.1
325.7



1.16
183.3



1.34
254.7



19.1
325.7



1.27
182.5










Preparation and Measuring Conditions


a) Substrate: 125 nm ITO, approx. 13 Ω/sq and 85% Tranmission, 50×50 mm2 Glass Substrate (1.1 mm Thick Polished Soda-Lime Float Glass with SiO2 Layer and 8 Individual ITO Anodes (Active Surface Area: 2×2 mm2))


Purified 2×20 min in an ultrasonic bath with Aceton selectopur and Methanol selectopur,

  • 3× snow jet cleaning (CO2 ice crystals)
  • O2 plasma treatment (5 min at 450 W and 0.12 mbar)


b) Pressure (2-4)×10−5 mbar During Deposition

  • Aluminium oxide ceramic crucible
  • Deposition rate: 0.06 nm/s
  • Layer thickness checked using a piezoelectric microbalance measuring device


Change of mask and intermediate aeration of the deposition chamber, first with nitrogen and then with air

  • Cathodes, 0.5=m lithium fluoride (insulating) and 100 rim aluminium each


c) The Device According to FIG. 2 was Introduced in a Glove Box, the Active OLED Suface was Positioned above Calibrated Vλ Silicon Photodiodes in a Darkened Measuring Device, and the Anode (ITO-) and Cathode (Al-) Contacts were Brought in Contact with Gilded Spring Electrodes


Programmable voltage supply (SMU) and digital multimeter for recording and processing the OLED curve in a PC via GPIB-BUS and LabView program


Voltage pulse operation (pulses lasting 1 s) between −10 V and +15 V (0.5 V increments): current density-voltage curve and luminance (emission intensity)-voltage curve as well as the calculated photometric efficiency values (in cd/A) and performance efficiency values (in 1 m/W) as a function of U


d) Wavelength of Maximum by Recording the Electroluminescence Spectrum Using an Xdap Diode Array Spectrometer

Claims
  • 1-60. (cancelled)
  • 61. An organic electroluminescent device comprising 2,5-diaminoterephthalic acid derivatives of the following formula 1a in one or several emitter layers in a pure or doped form in a device
  • 62. The device according to claim 61, wherein alkyl is C1-C8 alkyl, aryl is phenyl or naphthyl, and heteroaryl is cumaryl, pyridyl, chinolyl, indolyl, carbazolyl, imidazolyl, thienyl, thiazolyl, furyl or oxazolyl.
  • 63. The device according to claim 61, wherein R2, R3, R6 and R7 are trifluoromethyl, 2-fluorophenyl, 3-fluorophenyl, 4-fluorophenyl, 2,4-difluorophenyl, 2,6-difluorophenyl, 2,3,4,5-tetrafluorophenyl or pentafluorophenyl, and R4 and R8 are halogen, nitro, cyano or amino.
  • 64. The device according to claim 61, wherein R4 and R8 are trifluoromethyl, 2-fluorophenyl, 3-fluorophenyl, 4-fluorophenyl, 2,4-difluorophenyl, 2,6-difluorophenyl, 2,3,4,5-tetrafluorophenyl or pentafluorophenyl.
  • 65. The device according to claim 61, wherein the alkyl radical in alkoxy is C1-C4.
  • 66. The device according to claim 61, wherein X1 and X3 represent oxygen.
  • 67. The device according to claim 61, wherein compounds of the following general formula 1 are contained in one or several emitter layers, in a pure or doped form, in a device
  • 68. The device according to claim 61, wherein the compounds of the following formula 17 are contained
  • 69. The device according to claim 61, wherein the compounds of the following formula 18 are contained
  • 70. The device according to claim 61, wherein the compounds of the following formula 19 are contained
  • 71. The device according to claim 61, wherein the compounds of the following formula 20a are contained
  • 72. The device according to claim 61, wherein the compounds of the following formula 21a are contained
  • 73. The device according to claim 61, wherein the compounds of the following formula 22 are contained
  • 74. The device according to claim 61, wherein a mixture of 2-6 different substances is contained in a device in one or several emitter layers.
  • 75. The device according to claim 61, wherein the compounds of the following formula 2 are contained, wherein X1 and X3 as well as X2 and X4, R1 to R8, R4′ and R8′have the meaning indicated in claim 1, and R4 and R8 as well as R4′ and R8′ can also be or be different from halogen, nitro, cyano, amino, trifluoromethyl, 2-fluorophenyl, 3-fluorophenyl, 4-fluorophenyl, 2,4-difluorophenyl, 2,6-difluorophenyl, 2,3,4,5-tetrafluorophenyl or pentafluorophenyl.
  • 76. The device according to claim 61, wherein the compounds of the following formula 37 are contained,
  • 77. The device according to claim 61, wherein the compounds of the following formula 38 are contained,
  • 78. The device according to claim 61, wherein the compounds of the following formula 39 are contained,
  • 79. The device according to claim 61, wherein the compounds of the following formula 40a are contained,
  • 80. The device according to claim 61, wherein the compounds of the following formula 41a are contained,
  • 81. The device according to claim 61, wherein the compounds of the following formula 43 are contained,
  • 82. The device according to claim 61, wherein the compounds of the following formula 42a are contained,
  • 83. The device according to any one of claims 75-82, wherein a mixture of 2-6 different substances is contained in a device in one or several emitter layers.
  • 84. The device according to claim 61, wherein the compounds of the following formula 3 or 4 are contained,
  • 85. A 2,5-diaminoterephthalic acid derivative of the formula 19,
  • 86. A 2,5-diaminoterephthalic acid derivative of the formula 2,
  • 87. A 2,5-diaminoterephthalic acid derivative of the formula 3,
  • 88. A 2,5-diaminoterephthalic acid derivative of the formula 4,
  • 89. The derivative according to any one of claims 85-88, wherein alkyl is C1-C4 alkyl, aryl is phenyl or naphthyl, and heteroaryl is pyridyl, thienyl or furyl.
  • 90. The device according to claim 61, wherein R10 and R11 have the meaning indicated therein, R2 and R6 are hydrogen or C1-C4 alkyl, each of R3 and R7 are phenyl, which has been substituted singly or doubly with H, halogen, CN, C1-C4 alkyl, C1-C4 alkoxy, halo-C1-C4 alkyl, or phenyl.
  • 91. The device according to claim 70, wherein X1 to X4 are oxygen, each of R2 and R4 are substituted with the same or different radicals H and C1-C4 alkyl, each of R3 and R7 are phenyl, which has been substituted singly or doubly with H, halogen, CN, C1-C4 alkyl, C1-C4 alkoxy, halo-C1-C4 alkyl, or phenyl, and R4 and R8 are hydrogen.
  • 92. The device according to claim 90 or claim 91, wherein the C1-C4 radical is a C1 radical.
  • 93. The device according to claim 90, R2 and R6 are methyl, each of R3 and R7 are phenyl, which has been substituted singly or doubly with methyl, methoxy, or halomethyl.
  • 94. The device according to claim 91, wherein R2 and R4 are methyl, each of R3 and R7 are phenyl, which has been substituted singly or doubly with methyl, methoxy, or halomethyl.
Priority Claims (1)
Number Date Country Kind
101 41 266.5 Aug 2001 DE national
PCT Information
Filing Document Filing Date Country Kind
PCT/DE02/03110 8/21/2002 WO