Colorant stabilizers

Abstract
The present invention is directed to compositions containing a colorant and at least one porphine. The present invention includes an ink set of one or more inks which have substantially identical light fastness properties. One or more of the inks of the ink set includes a colorant and at least one porphine. The porphine imparts light-stability to the colorant so that the colorant does not fade when exposed to electromagnetic radiation such as sunlight or artificial light. The ink set provides a range of colored inks having similar light-stability.
Description

TECHNICAL FIELD
The present invention relates to a family of colorant stabilizers. The colorant stabilizers, according to the present invention, are capable of stabilizing a colorant when it is exposed to electromagnetic radiation. The colorant stabilizers enable the production of an ink set wherein each ink of the ink set, regardless of color, possesses substantially similar light fastness properties.
BACKGROUND OF THE INVENTION
A major problem with colorants is that they tend to fade when exposed to electromagnetic radiation such as sunlight or artificial light and the like. It is believed that most of the fading of colorants when exposed to light is due to photodegradation mechanisms. These degradation mechanisms include oxidation or reduction of the colorants depending upon the environmental conditions in which the colorant is placed. Fading of a colorant also depends upon the substrate upon which they reside.
Product analysis of stable photoproducts and intermediates has revealed several important modes of photodecomposition. These include electron ejection from the colorant, reaction with ground-state or excited singlet state oxygen, cleavage of the central carbon-phenyl ring bonds to form amino substituted benzophenones, such as triphenylmethane dyes, reduction to form the colorless leuco dyes and electron or hydrogen atom abstraction to form radical intermediates.
Various factors such as temperature, humidity, gaseous reactants, including O.sub.2, O.sub.3, SO.sub.2, and NO.sub.2, and water soluble, nonvolatile photodegradation products have been shown to influence fading of colorants. The factors that effect colorant fading appear to exhibit a certain amount of interdependence. It is due to this complex behavior that observations for the fading of a particular colorant on a particular substrate cannot be applied to colorants and substrates in general.
Under conditions of constant temperature it has been observed that an increase in the relative humidity of the atmosphere increases the fading of a colorant for a variety of colorant-substrate systems (e.g., McLaren, K., J. Soc. Dyers Colour, 1956, 72, 527). For example, as the relative humidity of the atmosphere increases, a fiber may swell because the moisture content of the fiber increases. This aids diffusion of gaseous reactants through the substrate structure.
The ability of a light source to cause photochemical change in a colorant is also dependent upon the spectral distribution of the light source, in particular the proportion of radiation of wavelengths most effective in causing a change in the colorant and the quantum yield of colorant degradation as a function of wavelength. On the basis of photochemical principles, it would be expected that light of higher energy (short wavelengths) would be more effective at causing fading than light of lower energy (long wavelengths). Studies have revealed that this is not always the case. Over 100 colorants of different classes were studied and found that generally the most unstable were faded more efficiently by visible light while those of higher lightfastness were degraded mainly by ultraviolet light (McLaren, K., J. Soc. Dyers Colour, 1956, 72, 86).
The influence of a substrate on colorant stability can be extremely important. Colorant fading may be retarded or promoted by some chemical group within the substrate. Such a group can be a ground-state species or an excited-state species. The porosity of the substrate is also an important factor in colorant stability. A high porosity can promote fading of a colorant by facilitating penetration of moisture and gaseous reactants into the substrate. A substrate may also act as a protective agent by screening the colorant from light of wavelengths capable of causing degradation.
The purity of the substrate is also an important consideration whenever the photochemistry of dyed technical polymers is considered. For example, technical-grade cotton, viscose rayon, polyethylene, polypropylene, and polyisoprene are known to contain carbonyl group impurities. These impurities absorb light of wavelengths greater than 300 nm, which are present in sunlight, and so, excitation of these impurities may lead to reactive species capable of causing colorant fading (van Beek, H. C. A., Col. Res. Appl., 1983, 8(3), 176).
Therefore, there exists a need for methods and compositions which are capable of stabilizing a wide variety of colorants from the effects of both sunlight and artificial light.
SUMMARY OF THE INVENTION
The present invention addresses the needs described above by providing compositions and methods for stabilizing colorants against radiation including radiation in the visible wavelength range.
The present invention also relates to colorant compositions having improved stability, wherein the colorant is associated with a colorant stabilizer. In one embodiment, the colorant stabilizer comprises one or more porphines that have an extremely short triplet state lifetime. (See e.g., Kubat, et al., Photophysical properties of metal complexes of meso-tetrakis (4-sulphonatophenyl) porphyrin, J. Photochem. and Photbio. A: Chemistry 96 (1996), pgs 93-97 which is incorporated herein by reference). Particularly suitable porphines include, but are not limited to, porphines having the following structure: ##STR1## wherein R is any proton-donating moiety and M is iron, cobalt or copper. Desirably, R is SO.sub.3 H, ##STR2## COOH, or R.sub.1 COOH wherein R.sub.1 is an alkyl group of from 1 to 6 carbons.
Examples of such porphines are Cu-meso-tetra-(4-sulfanatophenyl)-porphine (designated CuTPPS4) and Cu-meso-tetra-(N-methyl-4-pyridyl)-porphine, having the following structures: ##STR3## The copper ion can also be substituted with an iron or cobalt ion. Other metal ions can be substituted in the porphine molecule as long as the molecule has a relatively short-lived triplet state.
In a further embodiment of the present invention, the colorant stabilizer comprises at least one porphine in combination with at least one metal or metal salt. Unexpectedly, it has been discovered that the incorporation of a relatively small concentration of metal or metal salt into a porphine-containing composition results in superior colorant stability. Preferred metals or metal salts include, but are not limited to, lanthanides and lanthanide salts. Lanthanide elements include scandium, yttium, lanthanum, cerium praseodymium, neodymium, promethium, samarium, europium, gadolinium, terbium, dysprosium, holmium, erbium, thulium, ytterbium, and lutetium.
In order to improve the solubility of the metal or metal salt in solution, metal solubility-enhancing agents may be added. Particularly useful metal solubility-enhancing agents include, but are not limited to, chelating agents. Optionally, a surfactant can be added to the metal/porphine composition to increase the interaction of the metal or metal salt and the porphine. In addition to surfactants, other additives such as TINUVIN.RTM. compounds (Ciba-Geigy Corporation) may be incorporated into the colorant composition.
The substrates to which the colorant stabilizers are applied include, but are not limited to, paper, wood, a wood product or composite, woven fabric, nonwoven fabric, textile, plastic, glass, metal, or any other substrate that would benefit from having a stabilized colorant thereon.
In another embodiment, a colorant stabilizer is present in a polymer coating of a heat transfer product, such as is used for transferring graphic images onto clothing.
Accordingly, each of the embodiments of the present invention provide stabilizing molecules that, when one or more of the stabilizing molecules are associated with a colorant, stabilizes the colorant. Therefore, the stabilizing molecules can be used as an additive to any colorant composition. For example, as certain of the stabilizing molecules are poorly soluble in water, they can be directly added to solvent or oil based (not water based) colorant compositions. Additionally, the stabilizing molecules can be added to other colorant compositions that contain additives enabling the solubilization of the stabilizing molecule therein. Further, the stabilizing molecules can be solubilized in an aqueous solution by attaching the molecule to a large water soluble molecule, such as a cyclodextrin.
The colorant stabilizers are particularly effective in ink jet inks. Use of the colorant stabilizers, as described herein, intensifies the colors and stabilizes the colors when exposed to light. Additionally, the colorant stabilizers are particularly effective in paper such as ink jet paper. Use of the colorant stabilizers in a substrate, as described herein, stabilizes a colorant to which it is applied. Also, colorant stabilizers in a substrate has been found to have the unexpected result of reducing the yellowing of the substrate itself upon exposure to light.
The colorant stabilizers are of particular interest in the formation of ink sets, wherein each ink of the ink set, regardless of color, possesses substantially identical light fastness properties as the other inks in the ink set. The ink set enables the production of multi-color text and/or graphics, which uniformly retain their color over extended periods of time and/or upon extended exposure to light.
These and other features and advantages of the present invention will become apparent after a review of the following detailed description of the disclosed embodiments and the appended claims.
DETAILED DESCRIPTION OF THE INVENTION
This application is directed to compositions and methods for stabilizing colorants against radiation including radiation in the visible wavelength range. This application is further directed to ink sets comprising one or more inks, each of which possesses substantially identical light stability upon exposure to radiation, including radiation in the visible wavelength range. The compositions and methods relating to stabilizing a colorant by admixing a stabilizing molecule with a colorant solution will first be addressed below. Subsequently, the compositions and methods relating to stabilizing a colorant by applying the colorant to a treated substrate containing a stabilizing molecule will be discussed.
As used herein, the term "composition" and such variations as "colored composition" are used herein to mean a colorant and one or more colorant stabilizers of the present invention. The composition can optionally include a molecular includant.
As used herein, the term "colorant" is meant to include, without limitation, any material which typically will be an organic material, such as an organic colorant or dye. The term is meant to include a single material or a mixture of two or more materials.
The term "light-stable" is used herein to mean that the colorant, when associated with one of the colorant stabilizing molecules of the present invention, is more stable to electromagnetic radiation, including, but not limited to, sunlight or artificial light, than when the colorant is not associated with such a compound.
The term "molecular includant," as used herein, is intended to mean any substance having a chemical structure which defines at least one cavity. That is, the molecular includant is a cavity-containing structure. As used herein, the term "cavity" is meant to include any opening or space of a size sufficient to accept at least a portion of the colorant.
The term "functionalized molecular includant" is used herein to mean a molecular includant to which one or more molecules of a colorant stabilizer are covalently coupled to each molecule of the molecular includant. The term "degree of substitution" is used herein to refer to the number of these molecules or leaving groups (defined below) which are covalently coupled to each molecule of the molecular includant.
The term "derivatized molecular includant" is used herein to mean a molecular includant having more than two leaving groups covalently coupled to each molecule of molecular includant. The term "leaving group" is used herein to mean any leaving group capable of participating in a bimolecular nucleophilic substitution reaction. Examples of molecular includants include, but are not limited to, the cyclodextrins.
The term "artificial light" is used herein to mean light having a relatively broad bandwidth that is produced from conventional light sources, including, but not limited to, conventional incandescent light bulbs and fluorescent light bulbs.
The term "thereon" is used herein to mean thereon or therein. For example, the present invention includes a substrate having a colored composition thereon. According to the definition of "thereon" the colored composition may be present on the substrate or it may be in the substrate.
Admixing Stabilizing Molecules Into Colorant Solutions.
The present invention relates to colorant compositions having improved stability, wherein the colorant stabilizer is associated with a colorant solution. Desirably, the colorant stabilizer is admixed with a colorant solution. The colorant stabilizer is desirably one or more porphines alone or in combination with at least one metal or metal salt. The colorant stabilizers of the present invention are admixed with a colorant to stabilize the colorant when the admixture is exposed to electromagnetic radiation such as artificial light or sunlight.
The present invention further relates to a method of stabilizing a colorant comprising associating one or more of the colorant stabilizers with the colorant solution. Optionally, the colorant stabilizer may be associated with a molecular includant, chelating agent, or other material to improve solubility and/or interaction of the colorant stabilizer and the colorant.
The present invention is particularly useful for stabilizing inks to be used in ink jet printers. Inks used in ink jet printers are described in U.S. patent application Ser. No. 08/769,885 filed on Dec. 19, 1996, which is a continuation of U.S. patent application Ser. No. 08/461,382 filed on Jun. 5, 1995, now abandoned, which is a divisional of U.S. patent application Ser. No. 08/461,365 filed on Jun. 5, 1995, now abandoned, all of which are incorporated herein by reference.
In another embodiment of the present invention, a colorant stabilizer is represented by porphines having an extremely short triplet state lifetime. (See e.g., Kubat, et al., Photophysical properties of metal complexes of meso-tetrakis (4-sulphonatophenyl) porphyrin, J. Photochem. and Photbio. A: Chemistry 96 (1996), pgs 93-97 which is incorporated herein by reference). Particularly suitable porphines include, but are not limited to, porphines having the following structure: ##STR4## wherein R is any proton-donating moiety and M is iron, cobalt or copper. Desirably, R is SO.sub.3 H, ##STR5## COOH, or R.sub.1 COOH wherein R.sub.1 is an alkyl group of from 1 to 6 carbons.
Desirably, the colorant stabilizer is represented by the porphines Cu-meso-tetra-(4-sulfanatophenyl)-porphine (designated CuTPPS4) and Cu-meso-tetra-(N-methyl-4-pyridyl)-porphine (designated CuTMPS4), having the following structure: ##STR6## The copper ion can also be substituted with an iron or cobalt ion. It is also understood that in the case of FeTPPS4, CuTPPS4 or CoTPPS4, the sulfuric acid moieties may be substituted with salts when in solution, such as sodium salts. The colorant solution may be stabilized with about 0.1% to 10% wt/wt porphine, more preferably about 0.3% to 1% wt/wt porphine, and more preferably about 0.5% wt/wt porphine.
In another embodiment, the colorant stabilizer comprises one or more porphines in combination with one or more metals or metal salts, such as lanthanides and lanthanide salts. Desirably, the amount of metal or metal salt in the colorant solution is from about 0.01% to 10% wt/wt metal, more desirably about 0.03% to 1% wt/wt metal, and more desirably about 0.05% wt/wt metal. Although lanthanides and lanthanide salts are desired metals, other metals, may also be used such as magnesium, iron, zinc, and other transition metals. To improve the solubility of the metal or metal salt in solution, metal solubility-enhancing agents may be added. Particularly useful metal solubility-enhancing agents include, but are not limited to, chelating agents, including, but not limited to, EDTA (ethylenediaminetetraacetic acid) or EGTA (ethylene glycol-bis(.beta.-aminoethyl ether)).
In a further embodiment, the colorant stabilizer comprises a porphine and a lanthanide, such as europium. Desirably, the amount of porphine in the colorant solution is from about 0.1% to 10% wt/wt porphine, more desirably about 0.3% to 1% wt/wt porphine, and more desirably about 0.5% wt/wt porphine. Desirably, the amount of lanthanide in the colorant solution is from about 0.01% to 10% wt/wt lanthanide, more desirably about 0.03% to 1% wt/wt lanthanide, and more desirably about 0.05% wt/wt lanthanide. Although europium and europium salts are desired lanthanides, other lanthanides, may also be used.
Although not wanting to be limited by the following, it is theorized that the above stabilizing compounds of the present invention, either admixed with a colorant solution or on or in a substrate to which the colorant is applied, act by quenching the excited state of a dye molecule by efficiently returning it to a ground state. This reduces the likelihood of an oxidative or other chemical reaction occurring which would render the dye chromophore colorless.
The quenching process can occur by a number of processes. One such process is referred to as the heavy atom effect (internal or external) in which atoms with a high atomic number, such as iodine, xenon and lanthanides, can effect the excited electronic transitions of the dye molecule by allowing here to fore forbidden electronic transitions to occur and by decreasing the excited state lifetimes. This effect permits the rapid return of the dye to its ground state.
Another quenching process involves back electron transfer. In this case, quenching of the excited dye molecule occurs through sequential electron transfer. The additive or quencher, and dye form an ion pair through electron donation within which back electron transfer leads to an overall deactivation of the excited energy donor, i.e., the dye.
Another quenching process involves a condition in which the quencher (additive) molecule has an excited energy state lower than the excited dye. In this case, it may be possible to transfer the excited energy to the quencher thereby allowing the dye molecule to return to its ground state. These mechanisms are more fully discussed in Chemistry and Light, Suppan, P., Published by The Royal Society of Chemistry, 1994, pgs 65-69 which is incorporated herein by reference.
The dye or colorant, for example, may be an organic dye. Organic dye classes include, by way of illustration only, triarylmethyl dyes, such as Malachite Green Carbinol base {4-(dimethylamino)-.alpha.-�4-(dimethylamino)phenyl!-.alpha.-phenyl-benzene-methanol}, Malachite Green Carbinol hydrochloride {N-4-��4-(dimethylamino)phenyl!phenyl-methylene!-2,5-cyclohexyldien-1-ylidene!-N-methyl-methanaminium chloride or bis�p-(dimethylamino)phenyl!phenylmethylium chloride }, and Malachite Green oxalate {N-4-��4-(dimethylamino)-phenyl!-phenylmethylene!-2,5-cyclohexyldien-1-ylidene!-N-methyl-methanaminium chloride or bis�p-(dimethylamino)-phenyl!phenylmethyliurn oxalate}; monoazo dyes, such as Cyanine Black, Chrysoidine �Basic Orange 2; 4-(phenylazo)-1,3-benzenediamine monohydrochloride!, Victoria Pure Blue BO, Victoria Pure Blue B, basic fuschin and .beta.-Naphthol Orange; thiazine dyes, such as Methylene Green, zinc chloride double salt �3,7-bis(dimethylamino)-6-nitrophenothiazin-5-ium chloride, zinc chloride double salt!; oxazine dyes, such as Lumichrome (7,8-dimethylalloxazine); naphthalimide dyes, such as Lucifer Yellow CH {6-amino-2-�(hydrazinocarbonyl)amino!-2,3-dihydro-1,3-dioxo-1H-benz�de!iso-quinoline-5,8-disulfonic acid dilithium salt}; azine dyes, such as Janus Green B {3-(diethylamino)-7-��4-(dimethylamino)phenyl!azo!-5-phenylphenazinium chloride}; cyanine dyes, such as Indocyanine Green {Cardio-Green or Fox Green; 2-�7-�1,3-dihydro-1,1-dimethyl-3-(4-sulfobutyl)-2H-benz�e!indol-2-ylidene!-1,3,5-heptatrienyl!-1,1-dimethyl-3-(4-sulfobutyl)-1H-benz �e!indolium hydroxide inner salt sodium salt}; indigo dyes, such as Indigo {Indigo Blue or Vat Blue 1; 2-(1,3-dihydro-3-oxo-2H-indol-2-ylidene)-1,2-dihydro-3H-indol-3-one}; coumarin dyes, such as 7-hydroxy-4-methyl-coumarin (4-methylumbelliferone); benzimidazole dyes, such as Hoechst 33258 �bisbenzimide or 2-(4-hydroxyphenyl)-5-(4-methyl-1-piperazinyl)-2,5-bi-1H-benzimidazole trihydrochloride pentahydrate!; paraquinoidal dyes, such as Hematoxylin {Natural Black 1; 7,11b-dihydrobenz�b!-indeno�1,2-d!pyran-3,4,6a,9,10(6H)-pentol)}; fluorescein dyes, such as Fluoresceinamine (5-aminofluorescein); diazonium salt dyes, such as Diazo Red RC (Azoic Diazo No. 10 or Fast Red RC salt; 2-methoxy-5-chlorobenzenediazonium chloride, zinc chloride double salt); azoic diazo dyes, such as Fast Blue BB salt (Azoic Diazo No. 20; 4-benzoylamino-2,5-diethoxy-benzene diazonium chloride, zinc chloride double salt); phenylenediamine dyes, such as Disperse Yellow 9 �N-(2,4-dinitrophenyl)-1,4-phenylenediamine or Solvent Orange 53!; diazo dyes, such as Disperse Orange 13 �Solvent Orange 52; 1-phenylazo-4-(4-hydroxyphenylazo)naphthalene!; anthraquinone dyes, such as Disperse Blue 3 �Celliton Fast Blue FFR; 1-methylamino-4-(2-hydroxyethylamino)-9,10-anthraquinone!, Disperse Blue 14 �Celliton Fast Blue B; 1,4-bis(methylamino)-9,10-anthraquinone!, and Alizarin Blue Black B (Mordant Black 13); trisazo dyes, such as Direct Blue 71 {Benzo Light Blue FFL or Sirius Light Blue BRR; 3-�(4-�(4-�(6-amino-1-hydroxy-3-sulfo-2-naphthalenyl)azo!-6-sulfo-1-naphthalenyl)-azo!-1-naphthalenyl)azo!-1,5-naphthalenedisulfonic acid tetrasodium salt}; xanthene dyes, such as 2,7-dichlorofluorescein; proflavine dyes, such as 3,6-diaminoacridine hemisulfate (Proflavine); sulfonaphthalein dyes, such as Cresol Red (o-cresolsulfonaphthalein); phthalocyanine dyes, such as Copper Phthalocyanine {Pigment Blue 15; (SP-4-1)-�29H,31H-phthalocyanato(2-)-N.sup.29,N.sup.30,N.sup.31,N.sup.32 !copper}; carotenoid dyes, such as trans-.beta.-carotene (Food Orange 5); carminic acid dyes, such as Carmine, the aluminum or calcium-aluminum lake of carminic acid (7-a-D-glucopyranosyl-9,10-dihydro-3,5,6,8-tetrahydroxy-1-methyl-9,10-dioxo-2-anthracenecarbonylic acid); azure dyes, such as Azure A �3-amino-7-(dimethylamino)phenothiazin-5-ium chloride or 7-(dimethylamino)-3-imino-3H-phenothiazine hydrochloride!; and acridine dyes, such as Acridine Orange �Basic Orange 14; 3,8-bis(dimethylamino)acridine hydrochloride, zinc chloride double salt! and Acriflavine (Acriflavine neutral; 3,6-diamino-10-methylacridinium chloride mixture with 3,6-acridine-diamine).
In some embodiments of the present invention, the colorant and/or colorant stabilizer is associated with a molecular includant. The term "associated" in its broadest sense means that the colorant and/or colorant stabilizer is at least in close proximity to the molecular includant. For example, the colorant and/or colorant stabilizer may be maintained in close proximity to the molecular includant by hydrogen bonding, van der Waals forces, or the like. Alternatively, the colorant and/or colorant stabilizer may be covalently bonded to the molecular includant, although this normally is neither desired nor necessary. As a further example, the colorant and/or colorant stabilizer may be at least partially included within the cavity of the molecular includant.
The molecular includant can be added to the colorant solution or incorporated into a substrate, such as paper, which is subsequently coated with the colorant solution. The molecular includant can be inorganic or organic in nature. In certain embodiments, the chemical structure of the molecular includant is adapted to form a molecular inclusion complex. Examples of molecular includants are, by way of illustration only, clathrates or intercalates, zeolites, and cyclodextrins. Examples of cyclodextrins include, but are not limited to, .alpha.-cyclodextrin, .beta.-cyclodextrin, .gamma.-cyclodextrin, .delta.-cyclodextrin, hydroxypropyl .beta.-cyclodextrin, hydroxyethyl .beta.-cyclodextrin, hydroxyethyl .alpha. cyclodextrin, carboxymethyl .alpha. cyclodextrin, carboxymethyl .beta. cyclodextrin, carboxymethyl .gamma. cyclodextrin, octyl succinated .alpha. cyclodextrin, octyl succinated .beta. cyclodextrin, octyl succinated .gamma. cyclodextrin and sulfated .beta. cyclodextrin and sulfated .gamma.-cyclodextrin (Cerestar U.S.A., Incorporated, Hammond, Ind.).
The term "derivatized cyclodextrin" as used herein means a cyclodextrin having more than two leaving groups covalently coupled to each molecule of cyclodextrin. The term "leaving group" is used herein to mean any leaving group capable of participating in a bimolecular nucleophilic substitution reaction. Examples of derivatized cyclodextrin includes, but is not limited to, hydroxypropyl .beta.-cyclodextrin, hydroxyethyl .beta.-cyclodextrin, hydroxyethyl .alpha. cyclodextrin, carboxymethyl .alpha. cyclodextrin, carboxymethyl .beta. cyclodextrin, carboxymethyl .gamma. cyclodextrin, octyl succinated .alpha. cyclodextrin, octyl succinated .beta. cyclodextrin, octyl succinated .gamma. cyclodextrin and sulfated .beta. and .gamma.-cyclodextrin. A desired derivatized cyclodextrin is ethylhydroxy .beta.-cyclodextrin.
A desired molecular includant is .gamma.-cyclodextrin. Another desirable molecular includant is .beta.-cyclodextrin. In other embodiments, the molecular includant is an ethyl hydroxy .beta.-cyclodextrin. Although not wanting to be bound by the following theory, it is believed that the molecular includant inhibits the aggregation of the colorant molecule in solution. Other aggregation inhibitors that can be used in practicing the present invention are starches, pectins, amyloses, clathrates and the crown ethers. It is to be understood that the addition of derivatized cyclodextrins to an ink formulation for the purpose of inhibiting aggregation and/or stabilizing the dyes in the inks is considered one aspect of the present invention.
As a practical matter, the colorant, the colorant stabilizer and molecular includant are likely to be solids depending upon the constituents used to prepare the molecules. However, any or all of such materials can be a liquid. The colored composition can be a liquid either because one or more of its components is a liquid, or, when the molecular includant is organic in nature, a solvent is employed. Suitable solvents include, but are not limited to, amides, such as N,N-dimethylformamide; sulfoxides, such as dimethylsulfoxide; ketones, such as acetone, methyl ethyl ketone, and methyl butyl ketone; aliphatic and aromatic hydrocarbons, such as hexane, octane, benzene, toluene, and the xylenes; esters, such as ethyl acetate; water; and the like. When the molecular includant is a cyclodextrin, particularly suitable solvents are the amides and sulfoxides.
In an embodiment where the composition of the present invention is a solid, the effectiveness of the above compounds on the colorant is improved when the colorant and the selected compounds are in intimate contact or in an association that approaches van der Waals radii. To this end, the thorough blending of the components, along with other components which may be present, is desirable. Such blending generally is accomplished by any of the means known to those having ordinary skill in the art. When the colored composition includes a polymer, blending is facilitated if the colorant and the colorant stabilizer are at least partly soluble in softened or molten polymer. In such case, the composition is readily prepared in, for example, a two-roll mill. Alternatively, the composition of the present invention can be a liquid because one or more of its components is a liquid.
For some applications, the composition of the present invention typically will be utilized in particulate form. In other applications, the particles of the composition should be very small. Methods of forming such particles are well known to those having ordinary skill in the art.
The colored composition optionally may also contain a carrier, the nature of which is well known to those having ordinary skill in the art. For many applications, the carrier will be a polymer, typically a thermosetting or thermoplastic polymer, with the latter being the more common. Examples of suitable thermosetting and thermoplastic polymers are disclosed in parent U.S. patent application Ser. No. 08/843,410, assigned to Kimberly Clark Worldwide, Inc., the entire content of which is hereby incorporated by reference.
In addition to the colorant, colorant stabilizer, and optional molecular includant, the colored composition of the present invention also can contain additional components, depending upon the application for which it is intended. Examples of such additional components include, but are not limited to, charge carriers; stabilizers against thermal oxidation; viscoelastic properties modifiers; cross-linking agents; plasticizers; charge control additives such as a quaternary ammonium salt; flow control additives such as hydrophobic silica, zinc stearate, calcium stearate, lithium stearate, polyvinylstearate, and polyethylene powders; fillers such as calcium carbonate, clay and talc; surfactants; chelating agents; and TINUVIN.RTM. compounds; among other additives used by those having ordinary skill in the art. Charge carriers are well known to those having ordinary skill in the art and typically are polymer-coated metal particles. Desirable surfactants include , but are not limited to, C.sub.12 to C.sub.18 surfactants such as cetyl trimethyl ammonium chloride and carboxymethylamylose. TINUVIN.RTM. compounds are a class of compounds produced by Ciba-Geigy Corporation, which includes benzophenones, benzotriazoles and hindered amines. Desirable TINUVIN.RTM. compounds include, but are not limited to, 2-(2'-hydroxy-3'-sec-butyl-5'-tert-butylphenyl)-benzotriazole, poly-(N-.beta.-hydroxyethyl-2,2,6,6-tetramethyl-4-hydroxy-piperidyl succinate and 2-(2'-hydroxy-3',5'-ditert butylphenyl)-5-chloro-benzotriazole. The identities and amounts of such additional components in the colored composition are well known to one of ordinary skill in the art.
When the colorant stabilizers of the present invention are used to stabilize the dyes in ink jet inks, it is desirable to filter the compositions through a small pore filter (0.45.mu.) such as a Millipore.RTM. filter before the ink formulation is placed in an ink jet cartridge. This will reduce or eliminate clogging of the cartridge ink nozzles due to particulate matter.
The colorant stabilizers of the present invention enable the formation of ink sets comprising one or more inks, wherein each ink of the ink set, regardless of color, possesses similar light fastness properties as the other inks in the ink set. Such ink sets may be used to produce multi-color text and/or graphics, which uniformly retain their color over extended periods of time and/or upon extended exposure to light. One desirable ink set includes cyan, magenta, yellow and black inks, wherein the magenta ink contains colorant stabilizers in the form of a porphine and a metal, such as europium, and the yellow ink contains a colorant stabilizer in the form of a porphine without the metal. Another desirable ink set includes cyan, magenta, yellow and black inks, wherein the cyan ink contains a colorant stabilizer in the form of a benzophenone, and the magenta and yellow inks contain colorant stabilizers in the form of a porphine and a metal, such as europium.
It is to be understood that in any desired ink set, a single ink may be stabilized according to the present invention or several of the inks may be stabilized utilizing one or more of the stabilizing agents described herein. Other ink sets are within the scope of the present invention. Included in the present invention are ink sets wherein the black color is a pigment and the other colors in the ink set are dyes. Although ink sets wherein the inks possess substantially identical light fastness properties are desirable, in some embodiments, it may be desirable to produce ink sets wherein the inks within the ink set have specifically controlled, varying light fastness properties.
The substrates to which the colorant and colorant stabilizers are applied include, but are not limited to, paper, wood, a wood product or composite, woven fabric, nonwoven fabric, textile, plastic, glass, metal, or any other substrate that would benefit from having a stabilized colorant thereon. Examples of suitable substrates are disclosed in parent U.S. patent application Ser. No. 08/843,410, assigned to Kimberly Clark Worldwide, Inc., the entire content of which is hereby incorporated by reference.





The present invention is further described by the examples which follow. Such examples, however, are not to be construed as limiting in any way either the spirit or scope of the present invention. In the examples, all parts are parts by weight unless stated otherwise.
EXAMPLE 1
Preparation and Testing of Inks Containing Porphine Colorant Stabilizers
This example reports the results of fade testing of various inks, either with or without the stabilizing additives of the present invention, on treated or untreated paper. More particularly, the paper is untreated Hewlett-Packard premium paper, or treated Hewlett-Packard premium paper prepared using a solution of about 50% wt/wt hydroxypropyl .gamma.-cyclodextrin to ink, in or on the paper in a concentration of about 5 to 15% wt/wt solution to paper.
The stabilizing additives of this example are porphines. Specifically, the porphines Cu-meso-tetra-(4-sulfanatophenyl)-porphine (designated CuTPPS4) and Cu-meso-tetra-(N-methyl-4-pyridyl)-porphine (designated CuTMPS4) (available from Porphyrin Products, Inc., Logan, Utah) were used, which are represented by the following structures, respectively: ##STR7##
The invention provides that the metal ion Co or Cu may be used interchangeably in the porphine structures of the present invention. Additional background on the chemistry of porphines can be found in Kubat et al. "Photophysical properties of metal complexes of meso-tetrakis (4-sulphonatophenyl) Porphyrin," Journal of Photochemistry and Photobiology A:Chemistry 96 (1996) 93-97, and references cited therein, hereby incorporated by reference.
Printed sheets of paper were placed in the Atlas weatherometer and exposed for the designated number of hours under the following conditions: 0.54 W/m.sup.2 at 440 nm, 55% humidity, 45.degree. C. black panel temperature, borosilicate filters.
The change in magenta color is measured by the Xrite Colorimeter (Model 938, SpectroDensitometer, Grandville, Mich.) which measures the .DELTA.E* values, based on the L, a*, b* as described by Cielab, D-50-2. The results are reported in the tables below.
The treated and untreated paper is printed with inks designated A1, A2, A3, A4, B1, B2, B3, B4, C1, C2, C3, and C4, prepared as follows:
______________________________________A1 Ink DI Water 84.80% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 4.00 Acid Red 52 0.40A2 Ink DI Water 85.40% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 3.00 Acid Red 52 0.80A3 Ink DI Water 86.00% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 2.00 Acid Red 52 1.20A4 Ink DI Water 86.60% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 1.00 Acid Red 52 1.60B1 Ink DI Water 83.02% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 5.78 Acid Red 52 0.40B2 Ink DI Water 84.07% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 4.33 Acid Red 52 0.80B3 Ink DI Water 85.11% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 2.89 Acid Red 52 1.20B4 Ink DI Water 86.16% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 1.44 Acid Red 52 1.60C1 Ink DI Water 82.62% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 6.18 Acid Red 52 0.40C2 Ink DI Water 82.62% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 4.63 Acid Red 52 0.80C3 Ink DI Water 84.91% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 3.09 Acid Red 52 1.20C4 Ink DI Water 86.06% 2 Pyrrolidone 10.00 Giv Guard DXN 00.20 Cobratec 99 00.10 Triethanolamine 00.50 Reactive Red 120 1.54 Acid Red 52 1.60______________________________________
The above inks were fade tested with the following results.
______________________________________Inks Without Additives 63HInk ID# .DELTA.E* .DELTA.H*______________________________________A1 47.8 7.5A2 57.5 21.6A3 60.7 33.8A4 62.1 43.2B1 38 -0.54B2 46.4 14.8B3 56.3 28.4B4 64.7 39.1C1 69.4 2.6C2 64.3 11.3C3 72.4 20.5C4 83.9 22.7______________________________________
The inks were prepared with about 0.5% CuTPPS.sub.4 stabilizing additive and fade tested on HP paper and HP .gamma.-CD paper with the following results.
______________________________________Inks made with 0.5% CuTPPS.sub.4 on HP premium paperSamples 15H 78H 94HID# .DELTA.E* .DELTA.H* .DELTA.E* .DELTA.H* .DELTA.E* .DELTA.H*______________________________________A1 9.6 4.8 34.7 12.1 41.6 12.8A2 14.7 12.8 41.8 23.8 48.8 24.9A3 19.6 18.7 42.7 31.9 47 32.7A4 29.6 28.9 51.8 42.4 55.5 42.1B1 8.2 1.8 30.6 8.8 38.2 9.2B2 8.3 6.3 32.3 17.8 37.8 18.8B3 14.9 13.8 39.0 27.5 44.5 28.6B4 25.2 24.6 47.7 38.3 51.6 38.5C1 14.3 -7.71 41.8 8.9 N/A N/AC2 7.9 -2.7 33.7 13.9 N/A N/AC3 9.2 6.9 37.9 23.6 N/A N/AC4 23.1 22.2 48.6 37.7 N/A N/A______________________________________
______________________________________Inks with 0.5% CuTPPS.sub.4 on Hydroxy-Propyl .gamma.-CD paperSamples 15H 78H 94HID# .DELTA.E* .DELTA.H* .DELTA.E* .DELTA.H* .DELTA.E* .DELTA.H*______________________________________A1 1.5 -0.2 6.6 -3.2 8 -4.1A2 1.2 0.28 4.1 -0.8 5.4 -1.3A3 2.8 2.14 5 4.3 5.2 4.3A4 4.9 4.7 10.4 9.8 10.2 9.5B1 3.1 -1.5 9.4 -5.5 11.2 -6.9B2 2.3 -2.4 7.7 -5.2 8.3 -5.7B3 1.2 1.1 4.1 0.13 4.7 -0.79B4 2.9 2.6 7.2 6.3 7.7 6.5C1 4 -3.3 17.1 -13.8 N/A N/AC2 3 -2.6 3.4 -2.8 N/A N/AC3 1.6 -1.5 5.2 -3.3 N/A N/AC4 1.4 1.1 4.7 3.5 N/A N/A______________________________________
Additionally, HP-1600 magenta ink was prepared with about 0.5% CuTPPS.sub.4 stabilizing additive and fade tested on HP paper and HP .gamma.-CD paper with the following results.
______________________________________15 Hour Multiple SamplesSamples ID# .DELTA.E* .DELTA.H*______________________________________HP #1 14.68 13.13HP #2 20.86 19.50HP #3 17.01 15.55HP #4 13.04 11.15HP #5 13.11 10.57HP #6 13.09 11.10HP .gamma.-CD #1 2.66 -1.47HP .gamma.-CD #2 1.20 -.53HP .gamma.-CD #3 2.44 -.53HP .gamma.-CD #4 1.30 -.47HP .gamma.-CD #5 1.74 -.30HP .gamma.-CD #6 1.35 -.34______________________________________
The HP-1600 magenta ink was also prepared with about 0.5% CuTMPS.sub.4 stabilizing additive and fade tested on HP paper and HP .gamma.-CD paper with the following results.
______________________________________15 Hour Multiple Samples______________________________________HP #1 13.94 11.39HP #2 13.58 11.11HP #3 13.98 11.57HP #4 14.16 11.56HP .gamma.-CD #1 2.32 -.99HP .gamma.-CD #2 1.44 -1.05HP .gamma.-CD #3 2.17 -.67HP .gamma.-CD #4 1.98 -1.21HP .gamma.-CD #5 2.14 -1.38HP .gamma.-CD #6 1.79 -.85HP .gamma.-CD #7 .36 .15______________________________________
EXAMPLE 2
Preparation and Testing of Inks Containing Porphine and Lanthanide Colorant Stabilizers
This example reports the results of fade testing of various inks, either with or without the stabilizing additives of the present invention, on untreated paper. More particularly, the paper is untreated QIS Photo Glossy paper.
The stabilizing additives of this example are porphines and europium salts. Specifically, the porphine Cu-meso-tetra-(4-sulfanatophenyl)-porphine (designated CuTPPS4) (available from Porphyrin Products, Inc., Logan, Utah) is used, as in Example 1 above. The europium salt, europium nitrate (designated EuN) (Strem Chemical Co., Newburyport, Mass.) is used.
A forty-eight hour accelerated fade test of various magenta ink composition was performed. A magenta control without stabilizing additives was applied to the QIS paper medium. After subjecting the ink composition and paper medium to the forty-eight hour test, .DELTA.E* and .DELTA.H* values were measured. Similar measurements were taken using the following ink formulations:
a) magenta+0.5 wt % CuTPPS4
b) magenta+0.05 wt % EuN
c) magenta+0.5 wt % CuTPPS4+0.05 wt % EuN.
The resulting measurements are given below.
______________________________________Ink Formulation Media .DELTA.E* .DELTA.H*______________________________________Magenta Control QIS Photo Glossy 31.8 24.5Magenta + CuTPPS4 QIS Photo Glossy 16.4 -3.7Magenta + EuN QIS Photo Glossy 19.6 17.3Magenta + CuTPPS4 + QIS Photo Glossy 7.8 2.8EuN______________________________________
Having thus described the invention, numerous changes and modifications thereof will be readily apparent to those having ordinary skill in the art, without departing from the spirit or scope of the invention.
Claims
  • 1. An ink set comprising two or more inks, wherein one or more inks of the ink set contain a porphine.
  • 2. The ink set of claim 1, wherein the porphine is represented by the following formula ##STR8## wherein M is iron, cobalt or copper; and wherein R is SO.sub.3 H, ##STR9## COOH, or R.sub.1 COOH wherein R.sub.1 is an alkyl group of from 1 to 6 carbons.
  • 3. The ink set of claim 2, wherein the porphine is Cu-meso-tetra-(4-sulfanatophenyl)-porphine or Cu-meso-tetra-(N-methyl-4-pyridyl)-porphine, having the following structures, respectively: ##STR10## or the porphine is Co-meso-tetra-(4-sulfanatophenyl)-porphine or Co-meso-tetra-(N-methyl-4-pyridyl)-porphine, having the following structures, respectively: ##STR11##
  • 4. The ink set of claim 1, wherein a metal or metal salt is added to the one or more inks containing the porphine.
  • 5. The ink set of claim 4, wherein the metal or metal salt comprises a lanthanide or lanthanide salt.
  • 6. The ink set of claim 5, wherein the lanthanide or lanthanide salt comprises an europium or europium salt.
  • 7. The ink set of claim 1, wherein the porphine is associated with a molecular includant.
  • 8. The ink set of claim 7, wherein the molecular includant is one or more cyclodextrins.
  • 9. The ink set of claim 8, wherein the one or more cyclodextrins comprise .alpha.-cyclodextrin, .beta.-cyclodextrin, .gamma.-cyclodextrin, .delta.-cyclodextrin, hydroxypropyl .beta.-cyclodextrin, or hydroxyethyl .beta.-cyclodextrin.
  • 10. A composition comprising a colorant and at least one porphine.
  • 11. The composition of claim 10, wherein at least one porphine is represented by the following formula ##STR12## wherein M is iron, cobalt or copper; and wherein R is SO.sub.3 H, ##STR13## COOH, or R.sub.1 COOH wherein R.sub.1 is an alkyl group of from 1 to 6 carbons.
  • 12. The composition of claim 11, wherein at least one porphine is Cu-meso-tetra-(4-sulfanatophenyl)-porphine or Cu-meso-tetra-(N-methyl-4-pyridyl)-porphine, having the following structures, respectively: ##STR14## or the porphine is Co-meso-tetra-(4-sulfanatophenyl)-porphine or Co-meso-tetra-(N-methyl-4-pyridyl)-porphine, having the following structures, respectively: ##STR15##
  • 13. The composition of claim 12, further comprising a metal or a metal salt.
  • 14. The composition of claim 13, wherein the metal or metal salt comprises a lanthanide or lanthanide salt.
  • 15. The composition of claim 14, wherein the lanthanide or lanthanide salt comprises europium or europium salt.
  • 16. The composition of claim 10, wherein the at least one porphine is associated with a molecular includant.
  • 17. The composition of claim 16, wherein the molecular includant is one or more cyclodextrins.
  • 18. The composition of claim 17, wherein the one or more cyclodextrins comprise .alpha.-cyclodextrin, .beta.-cyclodextrin, .gamma.-cyclodextrin, .delta.-cyclodextrin, hydroxypropyl .beta.-cyclodextrin, or hydroxyethyl .beta.-cyclodextrin.
  • 19. A method of stabilizing a colorant comprising associating at least one porphine with the colorant.
  • 20. The method of claim 19, wherein at least one porphine is represented by the following formula ##STR16## wherein M is iron, cobalt or copper; and wherein R is SO.sub.3 H, ##STR17## COOH, or R.sub.1 COOH wherein R.sub.1 is an alkyl group of from 1 to 6 carbons.
  • 21. The method of claim 19, further comprising associating a metal or metal salt with the colorant.
  • 22. The method of claim 21, wherein the metal or metal salt comprises a lanthanide or lanthanide salt.
  • 23. The method of claim 22, wherein the lanthanide or lanthanide salt comprises europium or europium salt.
  • 24. The method of claim 19, wherein the at least one porphine is associated with a molecular includant.
  • 25. The method of claim 24, wherein the molecular includant is one or more cyclodextrins.
  • 26. The composition of claim 25, wherein the one or more cyclodextrins comprise .alpha.-cyclodextrin, .beta.-cyclodextrin, .gamma.-cyclodextrin, .delta.-cyclodextrin, hydroxypropyl .beta.-cyclodextrin, or hydroxyethyl .beta.-cyclodextrin.
  • 27. The method of claim 19, further comprising:
  • associating a colorant stabilizer with a second colorant; and forming an ink set of the colorants.
  • 28. A colorant stabilizing composition comprising a porphine.
  • 29. The colorant stabilizing composition of claim 28, wherein the porphine is represented by the following formula ##STR18## wherein M is iron, cobalt or copper; and wherein R is SO.sub.3 H, ##STR19## R.sub.1 COOH wherein R.sub.1 is an alkyl group of from 1 to 6 carbons.
  • 30. The colorant stabilizing composition of claim 29, wherein the porphine is Cu-meso-tetra-(4-sulfanatophenyl)-porphine or Cu-meso-tetra-(N-methyl-4-pyridyl)-porphine, having the following structures, respectively: ##STR20## or the porphine is Co-meso-tetra-(4-sulfanatophenyl)-porphine or Co-meso-tetra-(N-methyl-4-pyridyl)-porphine, having the following structures, respectively: ##STR21##
  • 31. The colorant stabilizing composition of claim 28, further comprising a metal or a metal salt.
  • 32. The colorant stabilizing composition of claim 31, wherein the metal or metal salt comprises a lanthanide or lanthanide salt.
  • 33. The colorant stabilizing composition of claim 32, wherein the lanthanide or lanthanide salt comprises europium or europium salt.
  • 34. The colorant stabilizing composition of claim 31, wherein the metal or metal salt comprises magnesium, iron, zinc, or other transition metals or their salts.
  • 35. The colorant stabilizing composition of claim 28, further comprising a molecular includant.
  • 36. The colorant stabilizing composition of claim 35, wherein the molecular includant is one or more cyclodextrins.
  • 37. The colorant stabilizing composition of claim 36, wherein the one or more cyclodextrins comprise .alpha.-cyclodextrin, .beta.-cyclodextrin, g-cyclodextrin, .delta.-cyclodextrin, hydroxypropyl .beta.-cyclodextrin, or hydroxyethyl .beta.-cyclodextrin.
  • 38. The colorant stabilizing composition of claim 28, further comprising a colorant.
  • 39. The colorant stabilizing composition of claim 28, further comprising a carrier.
  • 40. The colorant stabilizing composition of claim 39, wherein the carrier is a thermosetting or thermoplastic polymer.
  • 41. A substrate having thereon or therein the colorant stabilizing composition of claim 28.
  • 42. A substrate having thereon or therein a colorant stabilizing composition comprising a porphine.
  • 43. The substrate of claim 42, wherein the substrate comprises paper, wood, a wood product or composite, woven fabric, nonwoven fabric, textile, plastic, glass, or any combination thereof.
  • 44. The substrate of claim 42, wherein the porphine is represented by the following formula ##STR22## wherein M is iron, cobalt or copper; and wherein R is SO.sub.3 H, ##STR23## R.sub.1 COOH wherein R.sub.1 is an alkyl group of from 1 to 6 carbons.
  • 45. The substrate of claim 44, wherein the porphine is Cu-meso-tetra-(4-sulfanatophenyl)-porphine or Cu-meso-tetra-(N-methyl-4-pyridyl)-porphine, having the following structures, respectively: ##STR24## or the porphine is Co-meso-tetra-(4-sulfanatophenyl)-porphine or Co-meso-tetra-(N-methyl-4-pyridyl)-porphine, having the following structures, respectively: ##STR25##
  • 46. The substrate of claim 42, further comprising a metal or a metal salt associated with the porphine.
  • 47. The substrate of claim 46, wherein the metal or metal salt comprises a lanthanide or lanthanide salt.
  • 48. The substrate of claim 47, wherein the lanthanide or lanthanide salt comprises europium or europium salt.
  • 49. The substrate of claim 46, wherein the metal or metal salt comprises magnesium, iron, zinc, or other transition metals or their salts.
  • 50. The substrate of claim 42, further comprising a molecular includant associated with the porphine.
  • 51. The substrate of claim 50, wherein the molecular includant is one or more cyclodextrins.
  • 52. The substrate of claim 51, wherein the one or more cyclodextrins comprise .alpha.-cyclodextrin, .beta.-cyclodextrin, g-cyclodextrin, .delta.-cyclodextrin, hydroxypropyl .beta.-cyclodextrin, or hydroxyethyl .beta.-cyclodextrin.
  • 53. The substrate of claim 42, further comprising a colorant thereon.
CROSS-REFERENCE TO RELATED PATENT APPLICATION

This patent application is a continuation-in-part patent application of U.S. patent application Ser. No. 08/843,410 filed on Apr. 15, 1997, which is a continuation-in-part patent application of U.S. patent application Ser. No. 08/788,863 filed on Jan. 23, 1997, which is a continuation-in-part of Ser. No. 08/757,222 filed on Nov. 11, 1996, now U.S. Pat. No. 5,782,693, which is a continuation-in-part patent application of U.S. patent application Ser. No. 08/627,693 filed on Mar. 29, 1996, now abandoned, all of which are incorporated herein by reference.

US Referenced Citations (626)
Number Name Date Kind
28225 Heseltine et al. Nov 1860
28789 Chang Apr 1860
575228 von Gaillois Jan 1897
582853 Feer May 1897
893636 Maywald Jul 1908
1013544 Fuerth Jan 1912
1325971 Akashi Dec 1919
1364406 Olsen Jan 1921
1436856 Brenizer et al. Nov 1922
1744149 Staehlin Jan 1930
1803906 Krieger et al. May 1931
1844199 Bicknell et al. Feb 1932
1876880 Drapal Sep 1932
1880572 Wendt et al. Oct 1932
1880573 Wendt et al. Oct 1932
1916350 Wendt et al. Jul 1933
1916779 Wendt et al. Jul 1933
1955898 Wendt et al. Apr 1934
1962111 Bamberger Jun 1934
2005378 Kiel Jun 1935
2005511 Stoll et al. Jun 1935
2049005 Gaspar Jul 1936
2054390 Rust et al. Sep 1936
2058489 Murch et al. Oct 1936
2062304 Gaspar Dec 1936
2090511 Crossley et al. Aug 1937
2097119 Eggert Oct 1937
2106539 Schnitzspahn Jan 1938
2111692 Saunders et al. Mar 1938
2125015 Gaspar Jul 1938
2130572 Wendt Sep 1938
2132154 Gaspar Oct 1938
2145960 Wheatley et al. Feb 1939
2154996 Rawling Apr 1939
2159280 Mannes et al. May 1939
2171976 Erickson Sep 1939
2181800 Crossley et al. Nov 1939
2185153 Lecher et al. Dec 1939
2220178 Schneider Nov 1940
2230590 Eggert et al. Feb 1941
2237885 Markush et al. Apr 1941
2243630 Houk et al. May 1941
2268324 Polgar Dec 1941
2281895 van Poser et al. May 1942
2328166 Poigar et al. Aug 1943
2346090 Staehle Apr 1944
2349090 Haddock May 1944
2356618 Rossander et al. Aug 1944
2361301 Libby, Jr. et al. Oct 1944
2364359 Kienle et al. Dec 1944
2381145 von Glahn et al. Aug 1945
2382904 Federsen Aug 1945
2386646 Adams et al. Oct 1945
2402106 von Glahn et al. Jun 1946
2416145 Biro Feb 1947
2477165 Bergstrom Jul 1949
2527347 Bergstrom Oct 1950
2580461 Pearl Jan 1952
2601669 Tullsen Jun 1952
2612494 von Glahn et al. Sep 1952
2612495 von Glahn et al. Sep 1952
2628959 von Glahn et al. Feb 1953
2647080 Joyce Jul 1953
2680685 Ratchford Jun 1954
2728784 Tholstrup et al. Dec 1955
2732301 Robertson et al. Jan 1956
2744103 Koch May 1956
2757090 Meugebauer et al. Jul 1956
2763550 Lovick Sep 1956
2768171 Clarke et al. Oct 1956
2773056 Helfaer Dec 1956
2798000 Monterman Jul 1957
2809189 Stanley et al. Oct 1957
2827358 Kaplan et al. Mar 1958
2834773 Scalera et al. May 1958
2875045 Lurie Feb 1959
2892865 Giraldi et al. Jun 1959
2897187 Koch Jul 1959
2936241 Sharp et al. May 1960
2940853 Sagura et al. Jun 1960
2955067 McBurney et al. Oct 1960
2992129 Gauthier Jul 1961
2992198 Funahashi Jul 1961
3030208 Schellenberg et al. Apr 1962
3071815 MacKinnon Jan 1963
3075014 Palopoli et al. Jan 1963
3076813 Sharp Feb 1963
3104973 Sprague et al. Sep 1963
3114634 Brown et al. Dec 1963
3121632 Sprague et al. Feb 1964
3123647 Duennenberger et al. Mar 1964
3133049 Hertel et al. May 1964
3140949 Sprague et al. Jul 1964
3154416 Fidelman Oct 1964
3155509 Roscow Nov 1964
3175905 Wiesbaden Mar 1965
3178285 Anderau et al. Apr 1965
3238163 O'Neill Mar 1966
3242215 Heitmiller Mar 1966
3248337 Zirker et al. Apr 1966
3266973 Crowley Aug 1966
3282886 Gadecki Nov 1966
3284205 Sprague et al. Nov 1966
3300314 Rauner et al. Jan 1967
3304297 Wegmann et al. Feb 1967
3305361 Graynor et al. Feb 1967
3313797 Kissa Apr 1967
3330659 Wainer Jul 1967
3341492 Champ et al. Sep 1967
3359109 Harder et al. Dec 1967
3361827 Biletch Jan 1968
3363969 Brooks Jan 1968
3385700 Willems et al. May 1968
3397984 Williams et al. Aug 1968
3415875 Luethi et al. Dec 1968
3418118 Thommes et al. Dec 1968
3445234 Cescon et al. May 1969
3453258 Parmerter et al. Jul 1969
3453259 Parmerter et al. Jul 1969
3464841 Skofronick Sep 1969
3479185 Chambers Nov 1969
3502476 Kohei et al. Mar 1970
3503744 Itano et al. Mar 1970
3514597 Haes et al. May 1970
3541142 Cragoe, Jr. Nov 1970
3546161 Wolheim Dec 1970
3547646 Hori et al. Dec 1970
3549367 Chang et al. Dec 1970
3553710 Lloyd et al. Jan 1971
3563931 Horiguchi Feb 1971
3565753 Yurkowitz Feb 1971
3574624 Reynolds et al. Apr 1971
3579533 Yalman May 1971
3595655 Robinson et al. Jul 1971
3595657 Robinson et al. Jul 1971
3595658 Gerlach et al. Jul 1971
3595659 Gerlach et al. Jul 1971
3607639 Krefeld et al. Sep 1971
3607693 Heine et al. Sep 1971
3607863 Dosch Sep 1971
3615562 Harrison et al. Oct 1971
3617288 Hartman et al. Nov 1971
3617335 Kumura et al. Nov 1971
3619238 Kimura et al. Nov 1971
3619239 Osada et al. Nov 1971
3637337 Pilling Jan 1972
3637581 Horioguchi et al. Jan 1972
3642472 Mayo Feb 1972
3647467 Grubb Mar 1972
3652275 Baum et al. Mar 1972
3660542 Adachi et al. May 1972
3667954 Itano et al. Jun 1972
3668188 King et al. Jun 1972
3669925 King et al. Jun 1972
3671096 Mackin Jun 1972
3671251 Houle et al. Jun 1972
3676690 McMillin et al. Jul 1972
3678044 Adams Jul 1972
3689565 Hoffmann et al. Sep 1972
3694241 Guthrie et al. Sep 1972
3695879 Laming et al. Oct 1972
3697280 Strilko Oct 1972
3705043 Zablak Dec 1972
3707371 Files Dec 1972
3729313 Smith Apr 1973
3737628 Azure Jun 1973
3765896 Fox Oct 1973
3775130 Enomoto et al. Nov 1973
3788849 Taguchi et al. Jan 1974
3799773 Watarai et al. Mar 1974
3800439 Sokolski et al. Apr 1974
3801329 Sandner et al. Apr 1974
3817752 Laridon et al. Jun 1974
3840338 Zviak et al. Oct 1974
3844790 Chang et al. Oct 1974
3870524 Watanabe et al. Mar 1975
3873500 Kato et al. Mar 1975
3876496 Lozano Apr 1975
3887450 Gilano et al. Jun 1975
3895949 Akamatsu Jul 1975
3901779 Mani Aug 1975
3910993 Avar et al. Oct 1975
3914165 Gaske Oct 1975
3914166 Rudolph et al. Oct 1975
3915824 McGinniss Oct 1975
3919323 Houlihan et al. Nov 1975
3926641 Rosen Dec 1975
3928264 Young, Jr. et al. Dec 1975
3933682 Bean Jan 1976
3952129 Matsukawa et al. Apr 1976
3960685 Sano et al. Jun 1976
3965157 Harrison Jun 1976
3978132 Houlihan et al. Aug 1976
3984248 Sturmer Oct 1976
3988154 Sturmer Oct 1976
4004998 Rosen Jan 1977
4012256 Levinos Mar 1977
4017652 Gruber Apr 1977
4022674 Rosen May 1977
4024324 Sparks May 1977
4039332 Kokelenberg et al. Aug 1977
4043819 Baumann Aug 1977
4048034 Martan Sep 1977
4054719 Cordes, III Oct 1977
4056665 Tayler et al. Nov 1977
4058400 Crivello Nov 1977
4067892 Thorne et al. Jan 1978
4071424 Dart et al. Jan 1978
4073968 Miyamoto et al. Feb 1978
4077769 Garcia Mar 1978
4079183 Green Mar 1978
4085062 Virgilio et al. Apr 1978
4090877 Streeper May 1978
4100047 McCarty Jul 1978
4105572 Gorondy Aug 1978
4107733 Schickendanz Aug 1978
4110112 Roman et al. Aug 1978
4111699 Krueger Sep 1978
4114028 Baio et al. Sep 1978
4126412 Masson et al. Nov 1978
4141807 Via Feb 1979
4144156 Kuesters et al. Mar 1979
4148658 Kondoh et al. Apr 1979
4162162 Dueber Jul 1979
4171977 Hasegawa et al. Oct 1979
4179577 Green Dec 1979
4181807 Green Jan 1980
4190671 Vanstone et al. Feb 1980
4197080 Mee Apr 1980
4199420 Photis Apr 1980
4229172 Baumann et al. Oct 1980
4232106 Iwasaki et al. Nov 1980
4238492 Majoie Dec 1980
4239843 Hara et al. Dec 1980
4239850 Kita et al. Dec 1980
4241155 Hara et al. Dec 1980
4242430 Hara et al. Dec 1980
4242431 Hara et al. Dec 1980
4245018 Hara et al. Jan 1981
4245995 Hugl et al. Jan 1981
4246330 Hara et al. Jan 1981
4248949 Hara et al. Feb 1981
4250096 Kvita et al. Feb 1981
4251622 Kimoto et al. Feb 1981
4254195 Hara et al. Mar 1981
4256493 Yokoyama et al. Mar 1981
4256817 Hara et al. Mar 1981
4258123 Nagashima et al. Mar 1981
4258367 Mansukhani Mar 1981
4259432 Kondoh et al. Mar 1981
4262936 Miyamoto Apr 1981
4268605 Hara et al. May 1981
4268667 Anderson May 1981
4269926 Hara et al. May 1981
4270130 Houle et al. May 1981
4271252 Hara et al. Jun 1981
4271253 Hara et al. Jun 1981
4272244 Schlick Jun 1981
4276211 Singer et al. Jun 1981
4277497 Fromantin Jul 1981
4279653 Makishima et al. Jul 1981
4279982 Iwasaki et al. Jul 1981
4279985 Nonogaki et al. Jul 1981
4284485 Berner Aug 1981
4288631 Ching Sep 1981
4289844 Specht et al. Sep 1981
4290870 Kondoh et al. Sep 1981
4293458 Gruenberger et al. Oct 1981
4298679 Shinozaki et al. Nov 1981
4300123 McMillin et al. Nov 1981
4301223 Nakamura et al. Nov 1981
4302606 Barabas et al. Nov 1981
4306014 Kunikane et al. Dec 1981
4307182 Dalzell et al. Dec 1981
4308400 Felder et al. Dec 1981
4315807 Felder et al. Feb 1982
4318705 Nowak et al. Mar 1982
4318791 Felder et al. Mar 1982
4321118 Felder et al. Mar 1982
4335054 Blaser et al. Jun 1982
4335055 Blaser et al. Jun 1982
4336323 Winslow Jun 1982
4343891 Aasen et al. Aug 1982
4345011 Drexhage Aug 1982
4347111 Gehlhaus et al. Aug 1982
4349617 Kawashiri et al. Sep 1982
4350753 Shelnut et al. Sep 1982
4351893 Anderson Sep 1982
4356255 Tachikawa et al. Oct 1982
4357468 Szejtli et al. Nov 1982
4359524 Masuda et al. Nov 1982
4362806 Whitmore Dec 1982
4367072 Vogtle et al. Jan 1983
4367280 Kondo et al. Jan 1983
4369283 Altschuler Jan 1983
4370401 Winslow et al. Jan 1983
4372582 Geisler Feb 1983
4373017 Masukawa et al. Feb 1983
4373020 Winslow Feb 1983
4374984 Eichler et al. Feb 1983
4376887 Greenaway et al. Mar 1983
4383835 Preuss et al. May 1983
4390616 Sato et al. Jun 1983
4391867 Derick et al. Jul 1983
4399209 Sanders et al. Aug 1983
4400173 Beavan Aug 1983
4401470 Bridger Aug 1983
4416961 Drexhage Nov 1983
4421559 Owatari Dec 1983
4424325 Tsunoda et al. Jan 1984
4425162 Sugiyama Jan 1984
4425424 Altland et al. Jan 1984
4426153 Libby et al. Jan 1984
4434035 Eichler et al. Feb 1984
4447521 Tiers et al. May 1984
4450227 Holmes et al. May 1984
4460676 Fabel Jul 1984
4467112 Matsuura et al. Aug 1984
4475999 Via Oct 1984
4477681 Gehlhaus et al. Oct 1984
4489334 Owatari Dec 1984
4495041 Goldstein Jan 1985
4496447 Eichler et al. Jan 1985
4500355 Shimada et al. Feb 1985
4508570 Fugii et al. Apr 1985
4510392 Litt et al. Apr 1985
4523924 Lacroix Jun 1985
4524122 Weber et al. Jun 1985
4534838 Lin et al. Aug 1985
4548896 Sabongi et al. Oct 1985
4555474 Kawamura Nov 1985
4557730 Bennett et al. Dec 1985
4565769 Dueber et al. Jan 1986
4567171 Mangum Jan 1986
4571377 McGinniss et al. Feb 1986
4595745 Nakano et al. Jun 1986
4604344 Irving et al. Aug 1986
4605442 Kawashita et al. Aug 1986
4613334 Thomas et al. Sep 1986
4614723 Schmidt et al. Sep 1986
4617380 Hinson et al. Oct 1986
4620875 Shimada et al. Nov 1986
4620876 Fugii et al. Nov 1986
4622286 Sheets Nov 1986
4631085 Kawanishi et al. Dec 1986
4632891 Banks et al. Dec 1986
4632895 Patel et al. Dec 1986
4634644 Irving et al. Jan 1987
4638340 Iiyama et al. Jan 1987
4647310 Shimada et al. Mar 1987
4655783 Reinert et al. Apr 1987
4663275 West et al. May 1987
4663641 Iiyama et al. May 1987
4668533 Miller May 1987
4672041 Jain Jun 1987
4698291 Koibuchi et al. Oct 1987
4701402 Patel et al. Oct 1987
4702996 Griffing et al. Oct 1987
4704133 Reinert et al. Nov 1987
4707161 Thomas et al. Nov 1987
4707425 Sasagawa et al. Nov 1987
4707430 Ozawa et al. Nov 1987
4711668 Shimada et al. Dec 1987
4713113 Shimada et al. Dec 1987
4720450 Ellis Jan 1988
4721531 Wildeman et al. Jan 1988
4721734 Gehlhaus et al. Jan 1988
4724021 Martin et al. Feb 1988
4724201 Okazaki et al. Feb 1988
4725527 Robillard Feb 1988
4727824 Ducharme et al. Mar 1988
4732615 Kawashita et al. Mar 1988
4737190 Shimada et al. Apr 1988
4737438 Ito et al. Apr 1988
4740451 Kohara Apr 1988
4745042 Sasago et al. May 1988
4746735 Kruper, Jr. et al. May 1988
4752341 Rock Jun 1988
4755450 Sanders et al. Jul 1988
4761181 Suzuki Aug 1988
4766050 Jerry Aug 1988
4766055 Kawabata et al. Aug 1988
4770667 Evans et al. Sep 1988
4771802 Tannenbaum Sep 1988
4772291 Shibanai et al. Sep 1988
4772541 Gottschalk Sep 1988
4775386 Reinert et al. Oct 1988
4786586 Lee et al. Nov 1988
4789382 Neumann et al. Dec 1988
4790565 Steed Dec 1988
4800149 Gottschalk Jan 1989
4803008 Ciolino et al. Feb 1989
4808189 Oishi et al. Feb 1989
4812139 Brodmann Mar 1989
4812517 West Mar 1989
4813970 Kirjanov et al. Mar 1989
4822714 Sanders Apr 1989
4831068 Reinert et al. May 1989
4834771 Yamauchi et al. May 1989
4837106 Ishikawa et al. Jun 1989
4837331 Yamanishi et al. Jun 1989
4838938 Tomida et al. Jun 1989
4839269 Okazaki et al. Jun 1989
4849320 Irving et al. Jul 1989
4853037 Johnson et al. Aug 1989
4853398 Carr et al. Aug 1989
4854971 Gane et al. Aug 1989
4857438 Loerzer et al. Aug 1989
4861916 Kohler et al. Aug 1989
4865942 Gottschalk et al. Sep 1989
4874391 Reinert Oct 1989
4874899 Hoelderich et al. Oct 1989
4885395 Hoelderich Dec 1989
4886774 Doi Dec 1989
4892941 Dolphin et al. Jan 1990
4895880 Gottschalk Jan 1990
4900581 Stuke et al. Feb 1990
4902299 Anton Feb 1990
4902725 Moore Feb 1990
4902787 Freeman Feb 1990
4911732 Neumann et al. Mar 1990
4911899 Hagiwara et al. Mar 1990
4917956 Rohrbach Apr 1990
4921317 Suzuki et al. May 1990
4925770 Ichiura et al. May 1990
4925777 Inoue et al. May 1990
4926190 Lavar May 1990
4933265 Inoue et al. Jun 1990
4933948 Herkstroeter Jun 1990
4937161 Kita et al. Jun 1990
4942113 Trundle Jul 1990
4950304 Reinert et al. Aug 1990
4952478 Miyagawa et al. Aug 1990
4952680 Schmeidl Aug 1990
4954380 Kanome et al. Sep 1990
4954416 Wright et al. Sep 1990
4956254 Washizu et al. Sep 1990
4964871 Reinert et al. Oct 1990
4965294 Ohngemach et al. Oct 1990
4966607 Shinoki et al. Oct 1990
4966833 Inoue Oct 1990
4968596 Inoue et al. Nov 1990
4968813 Rule et al. Nov 1990
4985345 Hayakawa et al. Jan 1991
4987056 Imahashi et al. Jan 1991
4988561 Wason Jan 1991
4997745 Kawamura et al. Mar 1991
5001330 Koch Mar 1991
5002853 Aoai et al. Mar 1991
5002993 West et al. Mar 1991
5003142 Fuller Mar 1991
5006758 Gellert et al. Apr 1991
5013959 Kogelschatz May 1991
5017195 Satou et al. May 1991
5023129 Morganti et al. Jun 1991
5025036 Carson et al. Jun 1991
5026425 Hindagolla et al. Jun 1991
5026427 Mitchell et al. Jun 1991
5028262 Barlow, Jr. et al. Jul 1991
5028792 Mullis Jul 1991
5030243 Reinert Jul 1991
5030248 Meszaros Jul 1991
5034526 Bonham et al. Jul 1991
5037726 Kojima et al. Aug 1991
5045435 Adams et al. Sep 1991
5045573 Kohler et al. Sep 1991
5047556 Kohler et al. Sep 1991
5049777 Mechtersheimer Sep 1991
5053320 Robbillard Oct 1991
5055579 Pawlowski et al. Oct 1991
5057562 Reinert Oct 1991
5068364 Takagaki et al. Nov 1991
5069681 Bouwknegt et al. Dec 1991
5070001 Stahlhofen Dec 1991
5073448 Vieira et al. Dec 1991
5074885 Reinert Dec 1991
5076808 Hahn et al. Dec 1991
5085698 Ma et al. Feb 1992
5087550 Blum et al. Feb 1992
5089050 Vieira et al. Feb 1992
5089374 Saeva Feb 1992
5096456 Reinert et al. Mar 1992
5096489 Laver Mar 1992
5096781 Vieira et al. Mar 1992
5098477 Vieira et al. Mar 1992
5098793 Rohrbach et al. Mar 1992
5098806 Robillard Mar 1992
5106723 West et al. Apr 1992
5108505 Moffat Apr 1992
5108874 Griffing et al. Apr 1992
5110706 Yumoto et al. May 1992
5110709 Aoai et al. May 1992
5114832 Zertani et al. May 1992
5124723 Layer Jun 1992
5130227 Wade et al. Jul 1992
5133803 Moffatt Jul 1992
5135940 Belander et al. Aug 1992
5139572 Kawashima Aug 1992
5139687 Borgher, Sr. et al. Aug 1992
5141556 Matrick Aug 1992
5141797 Wheeler Aug 1992
5144964 Demain Sep 1992
5147901 Rutsch et al. Sep 1992
5153104 Rossman et al. Oct 1992
5153105 Sher et al. Oct 1992
5153166 Jain et al. Oct 1992
5160346 Fuso et al. Nov 1992
5160372 Matrick Nov 1992
5166041 Murofushi et al. Nov 1992
5169436 Matrick Dec 1992
5169438 Matrick Dec 1992
5173112 Matrick et al. Dec 1992
5176984 Hipps, Sr. et al. Jan 1993
5178420 Shelby Jan 1993
5180425 Matrick et al. Jan 1993
5180652 Yamaguchi et al. Jan 1993
5181935 Reinert et al. Jan 1993
5185236 Shiba et al. Feb 1993
5187045 Bonham et al. Feb 1993
5187049 Sher et al. Feb 1993
5190565 Berenbaum et al. Mar 1993
5190710 Kletecka Mar 1993
5190845 Hashimoto et al. Mar 1993
5193854 Borowski, Jr. et al. Mar 1993
5196295 Davis Mar 1993
5197991 Rembold Mar 1993
5198330 Martic et al. Mar 1993
5202209 Winnik et al. Apr 1993
5202210 Matsuoka et al. Apr 1993
5202211 Vercoulen Apr 1993
5202212 Shin et al. Apr 1993
5202213 Nakahara et al. Apr 1993
5202215 Kanakura et al. Apr 1993
5202221 Imai et al. Apr 1993
5205861 Matrick Apr 1993
5208136 Zanoni et al. May 1993
5209814 Felten et al. May 1993
5219703 Bugner et al. Jun 1993
5221334 Ma et al. Jun 1993
5224197 Zanoni et al. Jun 1993
5224476 Schultz et al. Jul 1993
5224987 Matrick Jul 1993
5226957 Wickramanayake et al. Jul 1993
5227022 Leonhardt et al. Jul 1993
5241059 Yoshinaga Aug 1993
5244476 Schulz et al. Sep 1993
5250109 Chan et al. Oct 1993
5254429 Gracia et al. Oct 1993
5256193 Winnik et al. Oct 1993
5258274 Helland et al. Nov 1993
5261953 Vieira et al. Nov 1993
5262276 Kawamura Nov 1993
5268027 Chan et al. Dec 1993
5270078 Walker et al. Dec 1993
5271764 Winnik et al. Dec 1993
5271765 Ma Dec 1993
5272201 Ma et al. Dec 1993
5275646 Marshall et al. Jan 1994
5279652 Kaufmann et al. Jan 1994
5282894 Albert et al. Feb 1994
5284734 Blum et al. Feb 1994
5286286 Winnik et al. Feb 1994
5286288 Tobias et al. Feb 1994
5294528 Furutachi Mar 1994
5296275 Goman et al. Mar 1994
5296556 Frihart Mar 1994
5298030 Burdeska et al. Mar 1994
5300403 Angelopolus et al. Apr 1994
5300654 Nakajima et al. Apr 1994
5302195 Helbrecht Apr 1994
5302197 Wickramanayke et al. Apr 1994
5310778 Shor et al. May 1994
5312713 Yokoyama et al. May 1994
5312721 Gesign May 1994
5324349 Sano et al. Jun 1994
5328504 Ohnishi Jul 1994
5330860 Grot et al. Jul 1994
5334455 Noren et al. Aug 1994
5338319 Kaschig et al. Aug 1994
5340631 Matsuzawa et al. Aug 1994
5340854 Martic et al. Aug 1994
5344483 Hinton Sep 1994
5356464 Hickman et al. Oct 1994
5362592 Murofushi et al. Nov 1994
5368689 Agnemo Nov 1994
5372387 Wajda Dec 1994
5372917 Tsuchida et al. Dec 1994
5374335 Lindgren et al. Dec 1994
5376503 Audett et al. Dec 1994
5383961 Bauer et al. Jan 1995
5384186 Trinh Jan 1995
5393580 Ma et al. Feb 1995
5401303 Stoffel et al. Mar 1995
5401562 Akao Mar 1995
5415686 Kurabayashi et al. May 1995
5415976 Ali May 1995
5424407 Tanaka et al. Jun 1995
5425978 Berneth et al. Jun 1995
5426164 Babb et al. Jun 1995
5427415 Chang Jun 1995
5429628 Trinh et al. Jul 1995
5431720 Nagai et al. Jul 1995
5432274 Luong et al. Jul 1995
5445651 Thoen et al. Aug 1995
5445842 Tanaka et al. Aug 1995
5455143 Ali Oct 1995
5459014 Nishijima et al. Oct 1995
5464472 Horn et al. Nov 1995
5466283 Kondo et al. Nov 1995
5474691 Severns Dec 1995
5475080 Gruber et al. Dec 1995
5476540 Shields et al. Dec 1995
5479949 Battard et al. Jan 1996
5489503 Toan Feb 1996
5498345 Jollenbeck et al. Mar 1996
5501774 Burke Mar 1996
5503664 Sano et al. Apr 1996
5509957 Toan et al. Apr 1996
5531821 Wu Jul 1996
5532112 Kohler et al. Jul 1996
5541633 Winnik et al. Jul 1996
5543459 Hartmann et al. Aug 1996
5571313 Mafune et al. Nov 1996
5575891 Trokhan et al. Nov 1996
5580369 Belding et al. Dec 1996
5607803 Murofushi et al. Mar 1997
Foreign Referenced Citations (204)
Number Date Country
103085 Apr 1937 AUX
1262488 Sep 1988 AUX
620075 May 1962 BEX
637169 Mar 1964 BEX
413257 Oct 1932 CAX
458808 Dec 1936 CAX
460268 Oct 1949 CAX
461082 Nov 1949 CAX
463021 Feb 1950 CAX
463022 Feb 1950 CAX
465496 May 1950 CAX
465499 May 1950 CAX
465495 May 1950 CAX
483214 May 1952 CAX
517364 Oct 1955 CAX
537687 Mar 1957 CAX
552565 Feb 1958 CAX
571792 Mar 1959 CAX
779239 Feb 1968 CAX
9301303 Jul 1973 CAX
2053094 Apr 1992 CAX
94118 May 1958 CSX
0003884 Sep 1979 EPX
0029284 May 1981 EPX
0127574 Dec 1984 EPX
0262533 Apr 1988 EPX
0280458 Aug 1988 EPX
0308274 Mar 1989 EPX
0351615 Jan 1990 EPX
0375160 Jun 1990 EPX
0371304 Jun 1990 EPX
0373662 Jun 1990 EPX
0390439 Oct 1990 EPX
0458140A1 Oct 1991 EPX
0468465 Jan 1992 EPX
0542286 May 1993 EPX
000571190 Nov 1993 EPX
0609159 Aug 1994 EPX
0608433 Aug 1994 EPX
0639664 Feb 1995 EPX
2245010 Apr 1975 FRX
2383157 Oct 1978 FRX
1047787 Dec 1957 DEX
1022801 Jan 1958 DEX
1039835 Sep 1958 DEX
1040562 Oct 1958 DEX
1045414 Dec 1958 DEX
1047013 Dec 1958 DEX
1132450 Jul 1962 DEX
1132540 Jul 1962 DEX
1154069 Sep 1963 DEX
1240811 May 1967 DEX
2202497 Aug 1972 DEX
2432563 Feb 1975 DEX
2437380 Feb 1975 DEX
2444520 Mar 1975 DEX
2416259 Oct 1975 DEX
2714978 Oct 1977 DEX
2722264 Nov 1978 DEX
3126433 Jan 1983 DEX
158237 Jan 1983 DEX
3415033 Oct 1984 DEX
271512 Sep 1989 DEX
3921600 Jan 1990 DEX
3833437 Apr 1990 DEX
3833438 Apr 1990 DEX
004036328 Jul 1991 DEX
4132288 Apr 1992 DEX
4126461 Feb 1993 DEX
662500 Apr 1964 ITX
43-15663 Jul 1968 JPX
47-26653 Jul 1972 JPX
47-45409 Nov 1972 JPX
49-8909 Feb 1974 JPX
5065592 Jun 1975 JPX
51-17802 Feb 1976 JPX
53-104321 Sep 1978 JPX
55-62059 May 1980 JPX
55-90506 Jul 1980 JPX
56-14569 Feb 1981 JPX
0014233 Feb 1981 JPX
56-24472 Mar 1981 JPX
56-36556 Apr 1981 JPX
57-61055 Apr 1982 JPX
57-128283 Aug 1982 JPX
57-171775 Oct 1982 JPX
58-124452 Jul 1983 JPX
58-125770 Jul 1983 JPX
58-222164 Dec 1983 JPX
59-89360 May 1984 JPX
29219270 Dec 1984 JPX
59-219270 Apr 1985 JPX
60-192729 Oct 1985 JPX
60-239739 Nov 1985 JPX
60-239740 Nov 1985 JPX
60-239741 Nov 1985 JPX
60-239743 Nov 1985 JPX
61-288 Jan 1986 JPX
613781 Jan 1986 JPX
61-14995 Jan 1986 JPX
61-14994 Jan 1986 JPX
61-21184 Jan 1986 JPX
61-25885 Feb 1986 JPX
61-30592 Feb 1986 JPX
61-40366 Feb 1986 JPX
61-128973 Jun 1986 JPX
61-97025 Sep 1986 JPX
61-222789 Oct 1986 JPX
61-247703 Nov 1986 JPX
61-285403 Dec 1986 JPX
627703 Jan 1987 JPX
62-97881 May 1987 JPX
62-100557 May 1987 JPX
0223587 May 1987 JPX
62-127281 Jun 1987 JPX
424756 Jan 1988 JPX
63-43959 Feb 1988 JPX
63-48370 Mar 1988 JPX
63-95445 Apr 1988 JPX
63-95448 Apr 1988 JPX
63-95446 Apr 1988 JPX
63-95447 Apr 1988 JPX
63-95440 Apr 1988 JPX
63-95439 Apr 1988 JPX
63-95450 Apr 1988 JPX
63-95449 Apr 1988 JPX
63-151946 Jun 1988 JPX
63-165498 Jul 1988 JPX
63-164953 Jul 1988 JPX
63-223078 Sep 1988 JPX
63-223077 Sep 1988 JPX
63-243101 Oct 1988 JPX
63-199781 Dec 1988 JPX
64-15049 Jan 1989 JPX
64-29337 Jan 1989 JPX
64-40948 Feb 1989 JPX
89014948 Mar 1989 JPX
1-128063 May 1989 JPX
1146974 Jun 1989 JPX
01210477 Aug 1989 JPX
1288854 Nov 1989 JPX
2-58573 Feb 1990 JPX
292957 Apr 1990 JPX
2179642 Jul 1990 JPX
2282261 Nov 1990 JPX
3-134072 Jun 1991 JPX
03163566 Jul 1991 JPX
3-170415 Jul 1991 JPX
3-206439 Sep 1991 JPX
5134447 Nov 1991 JPX
0451840 Nov 1991 JPX
3-203694 Dec 1991 JPX
3284668 Dec 1991 JPX
4023885 Jan 1992 JPX
4023884 Jan 1992 JPX
4-45174 Feb 1992 JPX
4100801 Apr 1992 JPX
4-136075 May 1992 JPX
04356087 Dec 1992 JPX
543806 Feb 1993 JPX
561220 Mar 1993 JPX
5080506 Apr 1993 JPX
05119506 May 1993 JPX
5-140498 Jun 1993 JPX
2-219869 Sep 1993 JPX
5263067 Oct 1993 JPX
680915 Mar 1994 JPX
6116555 Apr 1994 JPX
6116557 Apr 1994 JPX
6116556 Apr 1994 JPX
6-175584 Jun 1994 JPX
6214339 Aug 1994 JPX
6256633 Sep 1994 JPX
6256494 Sep 1994 JPX
7113828 Apr 1972 NLX
1310767 May 1987 RUX
1772118 Oct 1992 RUX
603767 Aug 1978 CHX
197808 May 1988 CHX
275245 Oct 1928 GBX
349339 May 1931 GBX
355686 Aug 1931 GBX
399753 Oct 1933 GBX
441085 Jan 1936 GBX
463515 Apr 1937 GBX
492711 Sep 1938 GBX
518612 Mar 1940 GBX
539912 Sep 1941 GBX
626727 Jul 1947 GBX
600451 Apr 1948 GBX
616362 Jan 1949 GBX
618616 Feb 1949 GBX
779389 Jul 1957 GBX
1372884 Nov 1974 GBX
2146357 Apr 1985 GBX
9211295 Jul 1992 WOX
9306597 Apr 1993 WOX
9401503 Jan 1994 WOX
9422501 Oct 1994 WOX
9422500 Oct 1994 WOX
9504955 Feb 1995 WOX
9600740 Jan 1996 WOX
9619502 Jun 1996 WOX
9622335 Jul 1996 WOX
Non-Patent Literature Citations (227)
Entry
Kubat et al. "Photophysical properties of metal complexes of meso-tetrakis (40sulphonatophenyl) porphyrin," J. Photochem. and Photobiol. 96 93-97 1996, no month available.
Abstract for WO 95/00343--A1 Textiles: Paper; Cellulose p. 7 1995, no month available.
Maki, Y. et al. "A novel heterocyclic N-oxide, pyrimido�5,4-g! pteridinetetrone 5-oxide, with multifunctional photooxidative properties" Chemical Abstracts 122 925 �No. 122:31350 F! 1995, no month available.
Abstract of patent, JP 6-80915 (Canon Inc.), Mar. 22, 1994.
Abstract of patent, JP 06-43573 (Iku Meji) (Feb. 18, 1994).
Pitchumani, K. et al. "Modification of chemical reactivity upon cyclodextrin encapsulation" Chemical Abstracts 121 982 �No. 121:13362 4v! 1994, no month avail.
Derwent Publications Ltd., London, JP 05297627 (Fujitsu Ltd.), Nov. 12, 1993. (Abstract).
Patent Abstracts of Japan, JP 5241369 (Bando Chem Ind Ltd et al.), Sep. 21, 1993. (Abstract).
Derwent Publications Ltd., London, JP 05232738 (Yamazaki, T.), Sep. 10, 1993. (Abstract).
Derwent Publications Ltd., London, EP 000559310 (Zeneca Ltd.), Sep. 8, 1993. (Abstract).
Derwent Publications Ltd., London, J,A, 5-230410 (Seiko Epson Corp), Sep. 7, 1993. (Abstract).
Derwent Publications Ltd., London, JP 5-230407 (Mitsubishi Kasei Corp), Sep. 7, 1993, (Abstract).
Abstract Of Patent, JP 405230410 (Seiko Epson Corp.), Sep. 7, 1993. (Abstract).
Abstract Of Patent, JP 405230407 (Mitsubishi Kasei Corp.), Sep. 7, 1993. (Abstract).
Patent Abstracts of Japan, JP 5197198 (Bando Chem Ind Ltd et al.), Aug. 6, 1993. (Abstract).
Database WPI -Derwent Publications Ltd., London, J,A, 5197069 (Bando Chem), Aug. 6, 1993. (Abstract).
Abstract of patent, JP 5-195450 (Nitto Boseki Co. Ltd), Aug. 3, 1993.
Patent Abstracts of Japan, JP5181308 (Bando Chem Ind Ltd et al.), Jul. 23, 1993. (Abstract).
Patent Abstracts of Japan, JP 5181310 (Bando Chem Ind Ltd et al.), Jul. 23, 1993. (Abstract).
Derwent Publications Ltd., London, JP 5-132638 (Mitsubishi Kasei Corp), May 28, 1993. (Abstract).
Abstract Of Patent, JP 405132638 (Mitsubishi Kasei Corp.), May 28, 1993. (Abstract).
Derwent Publications Ltd., London, JP 5-125318 (Mitsubishi Kasei Corp), May 21, 1993. (Abstract).
Abstract Of Patent, JP 405125318 (Mutsubishi Kasei Corp.), May 21, 1993. (Abstract).
Abstract of patent, JP 05-117200 (Hidefumi Hirai et al.) (May 14, 1993).
Derwent World Patents Index, JP 5117105 (Mitsui Toatsu Chem Inc.) May 14, 1993.
Derwent Publications Ltd., London, JP 05061246 (Ricoh KK), Mar. 12, 1993. (Abstract).
Husain, N. et al. "Cyclodextrins as mobile-phase additives in reversed-phase HPLC" American Laboratory 82 80-87 1993, no month available.
Hamilton, D.P. "Tired of Shredding? New Ricoh Method Tries Different Tack" Wall Street Journal B2 1993, no month available.
"Cyclodextrins: A Breakthrough for Molecular Encapsulation" American Maize Products Co. (Amaizo) 1993, no month available.
Duxbury "The Photochemistry and Photophysics of Triphenylmethane Dyes in Solid Liquid Media " Chemical Review 93 381-433 1993, no month avail.
Abstract of patent, JP 04-351603 (Dec. 7, 1992).
Abstract of patent, JP 04-351602 1992, no month available.
Derwent Publications Ltd., London, JP 404314769 (Citizen Watch Co. Ltd.), Nov. 5, 1992. (Abstract).
Abstract of patent, JP 04315739 1992, no month available.
Derwent Publications Ltd., London, JP 04300395 (Funai Denki KK), Oct. 23, 1992. (Abstract).
Derwent Publications Ltd., London, JP 404213374 (Mitsubishi Kasei Corp), Aug. 4, 1992. (Abstract).
Abstract of patent, JP 04-210228 1992, no month available.
Abstract Of Patent, JP 404202571 (Canon Inc.), Jul. 23, 1992. (Abstract), 1992.
Abstract Of Patent, JP 404202271 (Mitsubishi Kasei Corp.), Jul. 23, 1992. (Abstract).
Derwent Publications Ltd., London, JP 4-189877 (Seiko Epson Corp), Jul. 8, 1992. (Abstract).
Derwent Publications Ltd., London, JP 404189876 (Seiko Epson Corp), Jul. 8, 1992. (Abstract).
Abstract Of Patent, JP 404189877 (Seiko Epson Corp.), Jul. 8, 1992. (Abstract).
Derwent Publications Ltd., London, J,A, 4-170479 (Seiko Epson Corp), Jun. 18, 1992. (Abstract).
Abstract of patent, JP 04-81402 1992, no month available.
Abstract of patent, JP 04-81401 1992, no month available.
Kogelschatz "Silent-discharge driven excimer UV sources and their applications" Applied Surface Science 410-423 1992, no month available.
Derwent Publications, Ltd., London, JP 403269167 (Japan Wool Textile KK), Nov. 29, 1991 (Abstract).
Derwent Publications Ltd., London, JO 3247676 (Canon KK), Nov. 5, 1991 (Abstract).
Abstract of patent, JP 03-220384 1991, no month available.
Patent Abstracts of Japan, JP 03184896 (Dainippon Printing Co Ltd.) Aug. 12, 1991.
Derwent Publications Ltd., London, JP 3167270 (Mitsubishi Kasei Corp), Jul. 19, 1991. (Abstract).
Derwent Publications Ltd., London, JO 3167270 (Mitsubishi Kasei Corp.), Jul. 19, 1991 (Abstract).
Derwent Publications Ltd., London, JO 3093870 (Dainippon Ink Chem KK.), Apr. 18, 1991 (Abstract).
Abstract of patent, JP 06369890 1991, no month available.
Kogelschatz, U. et al. "New Excimer UV Sources for Industrial Applications" ABB Review 1-10 1991, no month available.
Abstract of patent, JP 03-41165 1991, no month available.
"Coloring/Decoloring Agent for Tonor Use Developed" Japan Chemical Week 1991, no month available.
Braithwaite, M., et al. "Formulation" Chemistry & Technology of UV & EB Formulation for Coatings, Inks & Paints IV 11-12 1991, no month available.
Scientific Polymer Products, Inc. Brochure 24-31 1991.
Dietliker, K. "Photoiniators for Free Radical and Catioinc Polymerisation" Chem & Tech of UV & EB Formulation for Coatings, Inks & Paints III 280 1991, no month available.
Dietliker, K. "Photoiniators for Free Radical and Catioinc Polymerisation" Chem & Tech of UV & EB Formulation for Coatings. Inks & Paints III 61, 63, 229-232, 405, 414, 1991, no month avail.
Esrom et al. "Large area Photochemical Dry Etching of Polymers iwth Incoherent Excimer UV Radiation" MRS Materials Research Society 1-7 1991, no month available.
"New Excimer UV Sources for Industrial Applications" ABB Review 391 1-10 1991, no month available.
Esrom et al. Excimer Laser-Induced Decompostion of Aluminum Nitride Materials Research Society Fall Meeting 1-6 1991, no month available.
Esrom et al. "Metal deposition with a windowless VUV excimer source" Applied Surface Science 1-5 1991, no month available.
Esrom "Excimer Laser-Induced Surface Activation of Aln for Electroless Metal Deposition" Mat. Res. Sco.lSymp. Proc. 204 457-465 1991, no month available.
Zhang et al. "UV-induced decompositin of adsorbed Cu-acetylacetonate films at room temperature for electroless metal plating" Applied Surface Science 1-6 1991, no month available.
"Coloring/Decoloring Agent for Tonor Use Developed" Japan Chemical Week 1991, no month available.
"German company develops reuseable paper" Pulp & Paper 1991, no month available.
Abstract of patent, JP 02289652 1990, no month available.
Ohashi et al. "Molecular Mechanics Studies on Inclusion Compounds of Cyanine Dye Monomers and Dimers in Cyclodextrin Cavities," J. Am. Chem. Soc. 112 5824-5830 1990, no month available.
Kogelschatz et al. "New Incoherent Ultraviolet Excimer Sources for Photolytic Material Deposition," Laser Und Optoelektronik 1990, no month available.
Patent Abstracts of Japan, JP 02141287 (Dainippon Printing Co Ltd.) May 30, 1990.
Abstract of Patent, JP 0297957, (Fuji Xerox Co., Ltd.), 1990 no month available.
Derwent Publications Ltd., London, JP 2091166 (Canon KK), Mar. 30, 1990. (Abstract) 1990.
Esrom et al. "Metal Deposition with Incoherent Excimer Radiation" Mat. Res. Soc. Symp. Proc. 158 189-198 1990 no month available.
Esrom "UV Excimer Laer-Induced Deposition of Palladium from palladiym Acetate Films" Mat. Res. Soc. Symp. Proc. 158 109-117 1990 no month available.
Kogelschatz, U. "Silent Discharges for the Generation of ultraviolet and vacuum ultraviolet excimer radiation" Pure & Applied Chem. 62 1667-74 1990 no month available.
Esrom et al. "Investigation of the mechanism of the UV-induced palladium depostions processf from thin solid palladium acetate films" Applied Surface Science 46 158-162 1990 no month available.
Zhang et al. "VUV synchrotron radiation processing of thin palladium acetate spin-on films for metallic surface patterning" Applied Surface Science 46 153-157 1990 no month available.
Brennan et al. "Tereoelectronic effects in ring closure reactions: the 2'-hydroxychalcone--flavanone equilibrium, and related systems," Canadian J. Chem. 68 (10) pp. 1780-1785 1990 no month available.
Abstract of patent, JP 01-299083 1989 no month available.
Derwent Publications Ltd., London, J,O, 1182379 (Canon KK), Jul. 20, 1989. (Abstract).
Derwent Publications Ltd., London, JO 1011171 (Mitsubishi Chem Ind. KK.), Jan. 13, 1989 (Abstract).
Gruber, R.J., et al. "Xerographic Materials" Encyclopedia of Polymer Science and Engineering 17 918-943 1989 no month available.
Pappas, S.P. "Photocrosslinking" Comph. Pol. Sci. 6 135-148 1989 no month available.
Pappas, S.P. "Photoinitiated Polymerization" Comph. Pol. Sci. 4 337-355 1989 no month available.
Kirilenko, G.V. et al. "An analog of the vesicular process with amplitude modulation of the incident light beam" Chemical Abstracts 111 569 �No. 111:12363 3b! 1989 no month available.
Esrom et al. "UV excimer laser-induced pre-nucleation of surfaces followed by electroless metallization" Chemtronics 4 216-223 1989 no month available.
Esrom et al. "VUV light-induced depostion of palladium using an incoherent Xe2* excimer source" Chemtronics 4 1989 no month available.
Esrom et al. "UV Light-Induced Depostion of Copper Films" C5-719-C5-725 1989 no month available.
Falbe et al. Rompp Chemie Lexikon 9 270 1989 no month available.
Derwent Publications, Ltd., London, SU 1423656 (Kherson Ind Inst), Sep. 15, 1988 (Abstract).
Derwent Publications, Ltd., London, EP 0280653 (Ciba GeigyAG), Aug. 31, 1988 (Abstract).
Abstract of patent, JP 63-190815 1988 no month available.
Patent Abstracts of Japan, JP 63179985 (Tomoegawa Paper Co. Ltd.), Jul. 23, 1988.
Derwent World Patents Index, JP 63179977 (Tomoegawa Paper Mfg Co Ltd), Jul. 23, 1988.
Furcone, S.Y. et al. "Spin-on B14Sr3Ca3Cu4016+.times. superconducting thin films from citrate precursors," Appl. Phys. Lett. 52(25) 2180-2182 1988 no month available.
Abstract of patent, JP 63-144329 1988 no month available.
Abstract of patent, JP 63-130164 1988 no month available.
Derwent Publications, Ltd., London, J6 3112770 (Toray Ind Inc), May 17, 1988 (Abstract).
Derwent Publications, Ltd., London, J6 3108074 (Konishiroku Photo KK), May 12, 1988 (Abstract).
Derwent Publications, Ltd., London,J6 3108073 (Konishiroku Photo KK), May 12, 1988 (Abstract).
Abstract of patent, JP 61-77846 1988 no month available.
Abstract of patent, JP 63-73241 1988 no month available.
Abstract of patent, JP 6347762, 1988 no month available.
Abstract of patent, JP 63-47763, 1988 no month available.
Abstract of patent, JP 63-47764, 1988 no month available.
Abstract of patent, JP 63-47765, 1988 no month available.
Eliasson, B., et al. "UV Excimer Radiation from Dielectric-Barrier Discharges" Applied Physics B 46 299-303 1988 no month available.
Eliasson et al. "New Trends in High Intensity UV Generation" EPA Newsletter (32) 29-40 1988 no month available.
Cotton, F.A. "Oxygen: Group Via(16)" Advanced Inorganic Chemistry 5th ed. 473-474 1988 no month available.
Derwent Publications, Ltd., London, J6 2270665 (Konishiroku Photo KK), Nov. 12, 1987 (Abstract).
Abstract of patent, JP 62-215261 1987 no month available.
Database WPI, Derwent Publications Ltd., London, JP 62032082 (Mitsubishi Denki KK), Feb. 12, 1987. (Abstract).
Abstract of patent, JP 62-32082 1987 no month available.
Derwent Publications Ltd., London, J6 2007772 (Alps Electric KK.), Jan. 14, 1987 (Abstract).
Gross et al. "Laser direct-write metallization in thin palladium acetate films" J. App. Phys. 61 (4) 1628-1632 1987 no month available.
Al-Ismail et al. "Some experimental results on thin polpropylene films loaded with finely-dispersed copper" Journal of Materials Science 415-418 1987 no month available.
Baufey et al. "Optical self-regulation during laser-induced oxidation of copper" J. Appl. Phys 61 (9) 4640-4651 1987 no month available.
Al-Ismail et al. "Some experimental results on thin polypropylene films loaded with finely-dispersed copper" Journal of Materials Science 415-418 1987 no month available.
Gross et al. "Laser direct-write metallization in thin palladium acetate films" J. App. Phys. 61 (4) 1628-1632 1987 no month available.
Derwent Publications Ltd., London, JA 0284478 (Sanyo Chem Ind Ltd.), Dec. 15, 1986 (Abstract).
Abstract of patent, JP 61251842 1986 no month available.
Database WPI, Derwent Publications Ltd., London, GB; SU, A, 1098210 (Kutulya L A) 23 Jun. 1986.
Abstract of patent, JP 61-97025 1986 no month available.
Abstract of patent, JP 61-87760 1986 no month available.
Derwent Publications Ltd., London, DL 0234731 (Karl Marx Univ. Leipzig), Apr. 9, 1986. (Abstract).
Derwent World Patents Index, SU 1219612 (AS USSR Non-AQ Soln) Mar. 23, 1986.
Derwent Publications, Ltd., London, J6 1041381 (Osaka Prefecture), Feb. 27, 1986 (Abstract) 1986 no month available.
Dialog, Japio, JP 61-034057 (Ciba Geigy AG) Feb. 18, 1986.
Derwent World Patents Index, JP 61027288 (sumitomo Chem Ind KK) Feb. 6, 1986.
Sakai et al. "A Novel and Practical Synthetic Method of 3(2H)-Furanone Derivatives," J. Heterocyclie Chem. 23 pp. 1199-1201 1986 no month available.
Jellinek, H.H.G. et al. "Evolution of H2O and CO2 During the Copper-Catalyzed Oxidation of Isotactic Polypropylene," J. Polymer Sci. 24 389-403 1986 no month available.
Jellinek, H.H.G. et al. "Diffusion of Ca2+ Catalysts from Cu-Metal Polymer or Cu-Oxide/Polymer Interfaces into Isotactic Polypropylene," J. Polymer Sci. 24 503-510 1986 no month available.
John J. Eisch and Ramiro Sanchez "Selective, Oxophilic Imination of Ketones with Bis (dichloroaluminum) Phenylimide" J. Org. Chem. 51 (10) 1848-1852 1986 no month available.
Derwent Publications Ltd., London, J6 0226575 (Sumitomo Chem Ind Ltd.), Oct. 11, 1985 (Abstract).
Abstract of patent, JP 60-156761 1985 no month available.
Derwent Publications Ltd., London, J,A, 0011451 (Fugi Photo Film KK), Jan. 21, 1985. (Abstract).
Derwent Publications, Ltd., London J6 0011-449-A (Taoka Chemical KK) Jan. 21, 1985 (abstract).
Roos, G. et al. "Textile applications of photocrosslinkable polymers" Chemical Abstracts 103 57 �No. 103:23690j! 1985 no month available.
Derwent World Patents Index, EP 127574 (Ciba Geigy AG), Dec. 5, 1984.
Derwent Publications Ltd., London, JP 0198187 (Canon KK), Nov. 9, 1984. (Abstract).
Derwent Publications Ltd., London, J,A, 0169883 (Ricoh KK), Sep. 25, 1984 (Abstract).
Derwent Publications Ltd., London, JA 0169883 (Ricoh KK), Sep. 25, 1984. (Abstract), 1984.
Derwent Publications Ltd., London, JA 0198187 (Canon KK), Sep. 11, 1984 (Abstract).
Derwent Publications Ltd., London, J,A, 0053563 (Dainippon Toryo KK), Mar. 28, 1984. (Abstract).
Derwent Publications Ltd., London, J,A, 0053562 (Dainippon Toryo KK), Mar. 28, 1984. (Abstract).
Abstract of Patent, JA 0053563 (Dainippon Toryo KK), Mar. 28, 1984 (Abstract).
Abstract of Patent, JA 0053562 (Dainippon Toryo KK), Mar. 28, 1984 (Abstract).
Derwent Publications Ltd., London, J,A, 0051961 (Dainippon Toryo KK), Mar. 26, 1984). (Abstract).
Abstract of Patent, JA 0051961 (Dainippon Toryo KK), Mar. 26, 1984 (Abstract).
Saenger, W. "Structural Aspects of Cyclodextrins and Their Inclusion Complexes" Inclusion Compounds--Structural Aspects of Inclusion Compounds formed by Organic Host 2 231-259 1984 no month available.
Szejtli "Industrial Applications of Cyclodextrins" Inclusion Compounds: Physical Prop. & Applns 3 331-390 1984 no month available.
Kano et al. "Three-Component Complexes of Cyclodextrins. Exciplex Formation in Cyclodextrin Cavity," J. Inclusion Phenomena 2 pp. 737-746 1984 no month available.
Suzuki et al. "Spectroscopic Investigation of Cyclodextrin Monomers, Derivatives, Polymers and Azo Dyes," J. Inclusion Phenomena 2. pp. 715-724 1984 no month available.
Abstract of Patent, JA 0222164 (Ricoh KK), Dec. 23, 1983 (Abstract).
Abstract of patent, JP 58211426 (Sekisui Plastics KK), Dec. 8, 1983).
Derwent Publications, Ltd., London, EP 0072775 (Ciba Geigy AG), Feb. 23, 1983 (Abstract).
van Beck, H.C.A. "Light-Induced Colour Changes in Dyes and Materials" Color Res. and Appl. 8 176-181 1983 no month available.
Connors, K.A. "Application of a stoichiometric model of cyclodextrin complex formation." Chemical Abstracts 98 598 �no. 98:53067g! 1983 no month available.
Abstract of Patent, EP 0065617 (IBM Corp.), Dec. 1, 1982 (Abstract).
Derwent Publications Ltd., London, J,A, 0187289 (Honshu Paper Mfg KK), Nov. 17, 1982. (Abstract).
Abstract of Patent, JA 0187289 (Honsho Paper Mfg KK), Nov. 17, 1982 (Abstract).
Abstract of Patent, JA 0185364 (Ricoh KK), Nov. 15, 1982 (Abstract).
Derwent Publications, Ltd., London J5 7139-146 (Showa Kako KK) Aug. 27, 1982(abstract).
Abstract of Patent, JA 0090069 (Canon KK), Jun. 4, 1982 (Abstract).
Derwent Publications, Ltd., London, JA 0061785 (Nippon Senka KK), Apr. 14, 1982 (Abstract).
Fischer, "Submicroscopic contact imaging with visible light by energy transfer" Appl. Phys. Letter 40(3) 1982 no month available.
Abstract of Patent, JA 0010659 (Canon KK), Jan. 2, 1982 (Abstract).
Abstract of Patent, JA 0010661 (Canon KK), Jan. 2, 1982 (Abstract).
Christen "Carbonylverbindungen: Aldehyde und Ketone," Grundlagen der Organischen Chemie 255 1982 no month available.
Derwent Publications Ltd., London, J,A, 0155263 (Canon KK), Dec. 1, 1981. (Abstract).
Abstract of Patent, JA 0155263 (Canon KK), Dec. 1, 1981 (Abstract).
Abstract of Patent, JA 0147861 (Canon KK), Nov. 17, 1981 (Abstract).
Derwent Publications Ltd., London, J,A, 0143273 (Canon KK), Nov. 7, 1981. (Abstract).
Abstract of Patent, JA 0143272 (Canon KK), Nov. 7, 1981 (Abstract).
Abstract of Patent, JA 0136861 (Canon KK), Oct. 26, 1981 (Abstract).
Abstract of Patent, JA 6133378 (Canon KK), Oct. 19, 1981 (Abstract).
Abstract of Patent, JA 6133377 (Canon KK), Oct. 19, 1981 (Abstract).
Abstract of Patent, JA 6093775 (Canon KK), Jul. 29, 1981 (Abstract).
Derwent Publications Ltd., London, J,A, 0008135 (Ricoh KK), Jan. 27, 1981. (Abstract).
Derwent Publications Ltd., London, J,A, 0004488 (Canon KK), Jan. 17, 1981. (Abstract).
Abstract of Patent, JA 0004488 (Canon KK), Jan. 17, 1981 (Abstract).
Kirk-Othmer "Metallic Coatings," Encyclopedia of Chemical Technology 15 241-274 1981 no month available.
Komiyama et al. "One-Pot Preparation of 4-Hydroxychalcone .beta.-Cyclodextrin as Catalyst," Makromol. Chem. 2 733-734 1981 no month available.
Derwent Publications, Ltd., London CA 1086-719 (Sherwood Medical) Sep. 30, 1980 (abstract).
Rosanske et al. "Stoichiometric Model of Cyclodextrin Complex Formation" Journal of Pharmaceutical Sciences 69 (5) 564-567 1980 no month available.
Semple et al. "Synthesis of Functionalized Tetrahydrofurans," Tetrahedron Letters 81 pp. 4561-4564 1980 no month available.
Kirk-Othmer "Film Deposition Techniques," Encyclopedia of Chemical Technology 10 247-283 1980 no month available.
Derwent World Patents Index, Derwent Info. Ltd., JP 54158941 (Toyo Pulp KK), Dec. 15, 1979. (Abstract).
Derwent World Patents Index, JP 54117536 (Kawashima F) Sep. 12, 1979.
Derwent Publications Ltd., London, J,A, 0005422 (Fuji Photo Film KK), Jan. 16, 1979. (Abstract).
Drexhage et al. "Photo-bleachable dyes and processes" Research Disclosure 85-87 1979 no month available.
"Color imaging devices and color filter arrays using photo-bleachable dyes" Research Disclosure 22-23 1979 no month available.
Wolff, N.E., et al. "Electrophotography" Kirk-Othmer Encyclopedia of Chemical Technology 8 794-826 1979 no month available.
Derwent Pulications Ltd., London, J,A, 0012037 (Pentel KK), Jan. 29, 1977. (Abstract).
Abstract of Patent, JA 0012037 (Pentel KK), Jan. 29, 1977 (Abstract).
Jenkins, P.W. et al. "Photobleachable dye material" Research Disclosure 18 �No. 12932! 1975 no month available.
Lamberts, R.L. "Recording color grid patterns with lenticules" Research Disclosure 18-19 �No. 12923! 1975 no month available.
Karmanova, L.S. et al. "Light stabilizers of daytime fluorescent paints" Chemical Abstracts 82 147 �No. 59971p! 1975 no month available.
Propkopovich, B. et al. "Selection of effective photoinducers for rapid hardening of polyester varnish PE-250" Chemical Abstracts 83 131 �No. 81334a! 1975 no month available.
"Variable Contrast Printing System" Research Disclosure 19 �No. 12931! 1975 no month available.
Lakshman "Electronic Absorption Spectrum of Copper Formate Tetrahydrate" Chemical Physics Letters 31 (2) 331-334 1975 no month available.
Derwent Publications, Ltd., London J4 9131-226 (TNational Cash Register C) Dec. 16, 1974 (abstract).
Chang, I.F., et al. "Color Modulated Dye Ink Jet Printer" IBM Technical Disclosure Bulletin 17(5) 1520-1521 1974 no month available.
"Darocur 1173: Liquid Photoiniator for Ultraviolet Curing of Coatings" 1974 no month available.
Hosokawa et al. "Ascofuranone, an antibiotic from Ascochyta," Japan Kokai 73 91,278 (Nov. 28, 1973) Merck Index 80 p. 283: abstract 94259t 1974 no month available.
Abstract of patent, NL 7112489 (Dec. 27, 1971).
Gafney et al. "Photochemical Reactions of Copper (II)--1,3-Diketonate Complexes" Journal of the Americqal Chemical Society 1971 no month available.
Derwent Publications, Ltd., London SU 292698-S Jan. 15, 1971 (abstract).
Derwent World Patents Index,CS 120380 (Kocourek, Jan) Oct. 15, 1966.
Rigdon, J.E. "In Search of Paper that Spies Can't Copy" Wall Street Journal no month available no date available.
Chatterjee,S. et al. "Photochemistry of Carbocyanine Alkyltriphenylborate Salts: Intra-Ion-Pair Electron Transfer and the Chemistry of Boranyl Radicals" J. Am. Chem. Soc. 112 6329-6338 no month available no date available.
"Assay--Physical and Chemical Analysis of Complexes" , Amaizo no month available no date available.
"Cyclodextrin" Amaizo no month available no date available.
"Beta Cyclodextrin Polymer (BCDP)" Amaizo no month available no date available.
"Chemically Modified Cyclodextrins" Amaizo no month available no date available.
"Cyclodextrin Complexation" American Maize Products. Co no date available.
"Monomers" Scientific Polymer Products. Inc no date available.
Suppan, Paul "Quenching of Excited States" Chemistry and Light 65-69, no date available.
Yamaguchi, H. "Supersensitization. Aromatic ketones as supersensitizers" Chemical Abstracts 53 107 (d), no date available.
Stecher, H. "Ultraviolet-absorptive additives in adhesives, lacquers and plastics" Chemical Abstracts 53 14579 (c), no date available.
Maslennikov, A.S. "Coupling of diazonium salts with ketones" Chemical Abstracts 60 3128e, no date available.
Derwent Publications Ltd., London, 4 9128022, no date available.
Abstract of Patent, JP 405195450, no date available.
Rose, Philip I. "Gelatin," Encyclopedia of Chemical Technology 7 488-513, no date available.
Continuation in Parts (4)
Number Date Country
Parent 843410 Apr 1997
Parent 788863 Jan 1997
Parent 757222 Nov 1996
Parent 627693 Mar 1996