Composition

JP2024521358A5Pending Publication Date: 2025-06-09MERCK PATENT GMBH
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Patent Information

Application Number
JP2023574422
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-06-01
Filing Date
2022-05-31
Publication Date
2025-06-09

AI Technical Summary

Technical Problem

Existing compositions face challenges in achieving uniform dispersion of luminescent and scattering particles, maintaining low viscosity for inkjet printing, and ensuring thermal stability and reduced solvent use, while also improving quantum yield (QY) and external quantum efficiency (EQE) of light-emitting parts.

Method used

A composition comprising reactive monomers, such as (meth)acrylate monomers, with specific functional groups and alkyl or aryl groups, along with chemical compounds that enhance dispersion and reduce viscosity, allowing for solvent-free or low-solvent formulations suitable for inkjet printing, and improve QY and EQE.

Benefits of technology

The solution achieves improved uniform dispersion and thermal stability, maintains low viscosity for inkjet printing, and enhances QY and EQE, reducing residue and clogging issues, facilitating large-area uniform printing.

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Abstract

The present invention relates to a composition comprising at least one light-emitting moiety.
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Description

[Technical field]

[0001] FIELD OF THEINVENTION The present invention relates to compositions comprising at least one light-emitting moiety, preferably a photocurable composition, a layer, a color converting device, a process for making a color converting device, an optical device containing at least one color converting device, a method for making a color converting device, and uses of the compositions. [Background technology]

[0002] Background technology WO 2017 / 054898 A1 describes a composition comprising red-emitting nanocrystals, a wetting and dispersing agent, propylene glycol monomethyl ether acetate as a solvent, an acrylic polymer mixture comprising acrylic units comprising acid groups and silane-modified acrylic units. WO 2019 / 002239 A1 discloses a composition comprising semiconducting luminescent nanoparticles, a polymer, and a (meth)acrylate such as 1.4. cyclohexanedimethanol-monoacrylate having a high viscosity of approximately 90 cp. [Prior art documents] [Patent documents]

[0003] Patent Literature 1. WO 2017 / 054898 A1 2. WO 2019 / 002239 A1 Summary of the Invention

[0004] SUMMARY OF THE PRESENT APPLICATION However, the present inventors have now discovered that there still exist one or more substantial problems for which improvement is desired, as listed below. improved uniform dispersion of the luminescent moieties in the composition, improved uniform dispersion of the scattering particles in the composition, preferably improved uniform dispersion of both the luminescent and scattering particles, more preferably improved uniform dispersion of the luminescent moieties and / or scattering particles without solvent; compositions with lower viscosity suitable for inkjet printing, preferably compositions which can maintain lower viscosity even when mixed with high loading of the luminescent moieties and / or scattering particles, still more preferably without solvent; compositions with lower vapor pressure for uniform printing over large areas; new compositions which provide no or reduced residue around the inkjet printing nozzle during / after inkjet printing, improved QY and / or EQE of the luminescent moieties in the composition, improved QY and / or EQE of the luminescent moieties after printing; improved thermal stability; ease of printing without clogging at the printing nozzle; easy handling of the composition, improved printing properties; simple fabrication process; improved absorbance of blue light; improved solidity of the layer made from the composition after inkjet printing.

[0005] The inventors set out to solve one or more of the problems set forth above. So at least; i) a reactive monomer, preferably one having one or more functional groups, more preferably a (meth)acrylate monomer; ii) a light-emitting portion; and iii) unsaturated linear alkyl groups having 1 to 45 carbon atoms; unsaturated or saturated linear alkyl groups having 1 to 80 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by oxygen atoms, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; unsaturated or saturated branched alkyl groups having 3 to 45 carbon atoms; linear alkenyl groups having 2 to 45 carbon atoms; branched alkenyl groups having 3 to 45 carbon atoms; unsaturated or saturated linear or branched alkoxyl groups having 1 to 45 carbon atoms; unsaturated or saturated linear aryl-alkyl groups having 6 to 45 carbon atoms; chemical compounds containing at least one group selected from unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; wherein the chemical compound is not a polymer, We have now discovered a novel composition comprising a photocurable composition, preferably a photocurable composition.

[0006] In another aspect, the invention relates to a composition comprising a polymer derived or derivable from one or more of the reactive monomers of the composition of the invention.

[0007] In another aspect, the present invention relates to a process for making the composition of the present invention comprising or consisting essentially of the following steps Y1 and Y2, preferably in that order, or Y3: Y1) combining at least one light-emitting moiety and a reactive monomer to form a first composition; Y2) The first composition is selected from the group consisting of an unsaturated linear alkyl group having 1 to 45 carbon atoms; an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, where one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms; a linear alkenyl group having 2 to 45 carbon atoms; a branched alkenyl group having 3 to 45 carbon atoms; an unsaturated or saturated linear or branched alkyl group having 1 to 45 carbon atoms. branched alkoxyl groups; unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms; unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; wherein the chemical compound is not a polymer; or Y3) at least one light-emitting moiety and a reactive monomer, selected from the group consisting of an unsaturated linear alkyl group having 1 to 45 carbon atoms; an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, where one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms; a linear alkenyl group having 2 to 45 carbon atoms; a branched alkenyl group having 3 to 45 carbon atoms; an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms; mixing with a chemical compound containing at least one group selected from unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms; unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Here, the chemical compound is not a polymer.

[0008] In another aspect, the invention relates to the use of the compositions of the invention in an electronic device, an optical device, a sensing device, or in a biomedical device, or for fabricating an electronic device, an optical device, or a biomedical device. In another aspect, the invention relates to a layer containing the composition of the invention.

[0009] In another aspect, the present invention provides a method for producing a composition comprising: I) a (meth)acrylate polymer, preferably which is obtained or obtainable from a (meth)acrylate monomer in the composition of the present invention; II) a light-emitting portion; and III) unsaturated linear alkyl groups having 1 to 45 carbon atoms; unsaturated or saturated linear alkyl groups having 1 to 80 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by oxygen atoms, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; unsaturated or saturated branched alkyl groups having 3 to 45 carbon atoms; linear alkenyl groups having 2 to 45 carbon atoms; branched alkenyl groups having 3 to 45 carbon atoms; unsaturated or saturated linear or branched alkoxyl groups having 1 to 45 carbon atoms; 4 to 4 carbon atoms; unsaturated or saturated linear aryl-alkyl groups having 6 to 45 carbon atoms; chemical compounds containing at least one group selected from unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Here, the chemical compound is not a polymer.

[0010] In another aspect, the present invention relates to a process for fabricating a layer of the present invention, wherein the process comprises, consists essentially of, or consists of at least the following steps: I) providing a composition of the present invention on a substrate, preferably II) curing the composition, preferably said curing is carried out by light irradiation and / or heat treatment. In another aspect, the invention relates to a layer obtained or obtainable from the process.

[0011] In another aspect, the present invention further relates to a color conversion device (100) comprising, consisting essentially of, or consisting of a first pixel (161) filled partially or completely with a layer of the present invention comprising at least a matrix material (120) containing light-emitting portions (110), and a bank (150) comprising at least a polymeric material, and preferably the color conversion device (100) further comprises a support medium (170). In another aspect, the present invention further relates to the use of the composition of the present invention for fabricating a layer of the present invention or a device of the present invention (100).

[0012] In another aspect, the present invention relates to a method for fabricating the color conversion device (100) of the present invention, comprising, consisting essentially of, or consisting of at least the following steps, preferably in this order: Xi) providing a bank composition onto a surface of a support medium; Xii) hardening the bank composition; Xiii) applying photopatterning to the cured composition to produce banks and patterned pixel areas; Xiv) providing a composition of the present invention, preferably by ink jetting, to at least one pixel area; Xv) curing the composition. Preferably, the color converting device (100) further contains a support medium (170).

[0013] In another aspect, the present invention further relates to a color conversion device (100) obtainable or obtained from the method of the present invention. In another aspect, the present invention also relates to the use of the color conversion device (100) of the present invention in an optical device (300) containing at least one functional medium (320, 420, 520) configured to modulate light or configured to emit light.

[0014] In another aspect, the present invention relates to an optical device (300) containing at least one functional medium (320, 420, 520) configured to modulate light or configured to emit light and a color conversion device (100) of the present invention. Further advantages of the present invention will become apparent from the following detailed description. [Brief description of the drawings]

[0015] Description of the drawings [Figure 1] FIG. 1 shows a schematic cross-sectional view of one embodiment of a color conversion film (100). [Diagram 2] FIG. 2 shows a schematic top view of another embodiment of the color conversion film (100) of the present invention. [Diagram 3] FIG. 3 shows a schematic cross-sectional view of one embodiment of an optical device (300) of the present invention. [Figure 4] FIG. 4: shows a schematic cross-sectional view of another embodiment of an optical device (300) of the present invention. [Diagram 5] FIG. 5 shows a schematic cross-sectional view of another embodiment of an optical device (300) of the present invention.

[0016] List of citations in Figure 1 100. Color conversion device 110. Light-emitting part 110R. Light emitting part (red) 110G. Light-emitting part (green) 120. Matrix materials 130. Light scattering particles (optional) 140. Colorant (optional) 140R. Colorant (red) (optional) 140G. Colorant (green) (optional) 140B. Colorant (blue) (optional) 150. Bank 161. First pixel 162. Second pixel 163. Third pixel 170. Support medium (substrate) (optional)

[0017] List of citations in Figure 2 200. Color conversion film 210R.Pixel (Red) 210G.Pixels (Green) 210B.Pixel (blue) 220. Bank

[0018] List of citations in Figure 3 300. Optical devices 100. Color conversion device 110. Light-emitting part 110R. Light emitting part (red) 110G. Light-emitting part (green) 120. Matrix materials 130. Light scattering particles (optional) 140. Colorant (optional) 140R. Colorant (red) (optional) 140G. Colorant (green) (optional) 140B. Colorant (blue) (optional) 150. Bank 320. Optical modulator 321. Polarizer 322. Electrode 323. Liquid crystal layer 330. Light source 331. LED light source 332. Light guide plate (optional) 333. Light emission from the light source (330)

[0019] List of citations in Figure 4 400. Optical Devices 100. Color conversion device 110. Light-emitting part 110R. Light emitting part (red) 110G. Light-emitting part (green) 120. Matrix materials 130. Light scattering particles (optional) 140. Colorant (optional) 140R. Colorant (red) (optional) 140G. Colorant (green) (optional) 140B. Colorant (blue) (optional) 150. Bank 420. Optical modulator 421. Polarizer 422. Electrode 423. Liquid crystal layer 430. Light source 431. LED light source 432. Light guide plate (optional) 440. Color Filter 433. Light emission from the light source (330)

[0020] List of citations in Figure 5 500. Optical devices 100. Color conversion device 110. Light-emitting part 110R. Light emitting part (red) 110G. Light-emitting part (green) 120. Matrix materials 130. Light scattering particles (optional) 140. Colorant (optional) 140R. Colorant (red) (optional) 140G. Colorant (green) (optional) 140B. Colorant (blue) (optional) 150. Bank 520. Light-emitting devices (e.g., OLEDs) 521. TFT 522. Electrode (anode) 523. Substrate 524. Electrode (cathode) 525. Light-emitting layer (e.g., OLED layer(s)) 526. Light emission from the light emitting device (520) 530. Optical layer (e.g. polarizer) (optional) 540. Color Filter DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0021] Definition of Terms As used herein, the symbols, units, abbreviations, and terms have the following meanings unless otherwise specified.

[0022] In this specification, unless otherwise specified, the singular includes the plural, and "one" or "that" means "at least one." In this specification, unless otherwise specified, conceptual elements may be expressed by plural species, and when amounts (e.g., weight % or mol %) are stated, they mean the sum of the plural species. "And / or" includes all combinations of elements and also includes the singular use of an element.

[0023] In this specification, when numerical ranges are indicated using "to" or "~", the endpoints are inclusive and the units are the same. For example, 5-25 mol% means 5 mol% or more and 25 mol% or less.

[0024] In this specification, the term "hydrocarbon" refers to a group that includes carbon and hydrogen, and optionally also includes oxygen or nitrogen. The term "hydrocarbyl group" refers to a monovalent, divalent, or higher valent hydrocarbon. In this specification, the term "aliphatic hydrocarbon" refers to a linear, branched, or cyclic aliphatic hydrocarbon, and the term "aliphatic hydrocarbon group" refers to a monovalent, divalent, or higher valent aliphatic hydrocarbon. The term "aromatic hydrocarbon" refers to a hydrocarbon that includes an aromatic ring that may be condensed with an alicyclic ring, as well as an aliphatic hydrocarbon group as an optional substituent. The term "aromatic hydrocarbon group" refers to a monovalent, divalent, or higher valent aromatic hydrocarbon. Furthermore, the term "aromatic ring" refers to a hydrocarbon that includes a conjugated unsaturated ring structure, and the term "alicyclic ring" refers to a hydrocarbon that includes a ring structure but does not include a conjugated unsaturated ring structure.

[0025] As used herein, alkyl refers to a group obtained by removing any one hydrogen from a linear or branched saturated hydrocarbon, and includes linear and branched alkyl, and cycloalkyl refers to a group obtained by removing any one hydrogen from a saturated hydrocarbon containing a cyclic structure, and includes linear or branched alkyl, optionally as a side chain on the cyclic structure.

[0026] In this specification, aryl refers to a group obtained by removing any one hydrogen from an aromatic hydrocarbon. Alkylene refers to a group obtained by removing any two hydrogens from a linear or branched saturated hydrocarbon. Arylene refers to a hydrocarbon group obtained by removing any two hydrogens from an aromatic hydrocarbon.

[0027] As used herein, when a polymer has more than one type of repeat unit, these repeat units are copolymerized, either alternating, random, block, graft, or any mixture thereof. According to the present invention, the term "(meth)acrylate polymer" means a methacrylate polymer, an acrylate polymer, or a combination of a methacrylate polymer and an acrylate polymer.

[0028] The term "radiation" refers to the emission of electromagnetic waves by electronic transitions in atoms and molecules. In this specification, degrees Celsius is used as a temperature unit. For example, 20 degrees means 20 degrees Celsius.

[0029] Detailed Description of the Invention In accordance with the invention, in one aspect, the composition comprises at least, consists essentially of, or consists of; i) a reactive monomer, preferably one having one or more functional groups, more preferably a (meth)acrylate monomer; ii) a light-emitting portion; and iii) unsaturated linear alkyl groups having 1 to 45 carbon atoms; unsaturated or saturated linear alkyl groups having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; unsaturated or saturated branched alkyl groups having 3 to 45 carbon atoms; linear alkenyl groups having 2 to 45 carbon atoms; branched alkenyl groups having 3 to 45 carbon atoms; unsaturated or saturated branched alkyl groups having 1 to 45 carbon atoms. or saturated linear or branched alkoxyl groups; unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms; chemical compounds containing at least one group selected from unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Preferably, the group is selected from an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, wherein one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; More preferably, it is selected from an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms or an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the carbon atoms of the alkyl, alkenyl and / or alkoxy groups range from 10 to 35, more preferably from 14 to 30; Even more preferably, it is an unsaturated or saturated linear alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the chain contains from 1 to 5 carbon-carbon double bonds, more preferably from 1 to 3 carbon-carbon double bonds, even more preferably 2 carbon-carbon double bonds; Here, the chemical compound is not a polymer.

[0030] - chemical compounds As a result, it may be preferable for the chemical compound to control the viscosity / solubility of the composition, more preferably to prevent the viscosity of the composition from increasing and / or to maintain good solubility of the photoluminescent moiety in the composition upon long-term storage.

[0031] In a preferred embodiment of the present invention, the chemical compound further comprises at least one group selected from one or more of the members of the group consisting of a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, a phosphonic acid, preferably the group is a phosphate group, a phosphonate group, a thiol group, a carboxyl group or any combination thereof, more preferably it is a carboxyl group.

[0032] Phosphonate groups, thiol groups, carboxyl groups, or any combination thereof are also believed to be more preferred because they have better attachment capabilities to the outermost surface of the luminescent portion of the inorganic moiety (such as the surface of the quantum material of the inorganic moiety).

[0033] More preferably, the chemical compound has the following chemical formula (XA ) Z(-X)uY -(X A ) During the ceremony Z is *-R x1 or [ka] where "*" represents the connection point to the formula symbol Y, and R x1 is a group selected from one or more members of the group consisting of a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, a phosphonic acid, preferably the group is a phosphonate group, a thiol group, a carboxyl group, or any combination thereof, more preferably it is a carboxyl group; and R x2 is a group selected from one or more members of the group consisting of a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, a phosphonic acid, preferably the group is a phosphonate group, a thiol group, a carboxyl group, or any combination thereof, more preferably it is a carboxyl group; X is a single bond, an alkylene group having 1 to 15 carbon atoms, or an alkenylene group having 1 to 15 carbon atoms, or a (poly)alkoxylene group having 1 to 15 carbon atoms, and preferably, Y is a (poly)alkoxylene group having 1 to 15 carbon atoms; u is 0 or 1; Y is an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, where one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms; unsaturated or saturated linear or branched alkoxyl groups having 4 to 45 carbon atoms, unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms, unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Preferably, the group is selected from an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, wherein one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; More preferably, it is selected from an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms or an unsaturated or saturated straight chain alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the carbon atoms of the alkyl, alkenyl and / or alkoxy groups range from 10 to 35, more preferably from 14 to 30. Even more preferably, it is an unsaturated or saturated linear alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the chain contains from 1 to 5 carbon-carbon double bonds, more preferably from 1 to 3 carbon-carbon double bonds, even more preferably 2 carbon-carbon double bonds; The alkyl, alkenyl and / or alkoxy groups may optionally be represented by one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a )2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably Y is a linear or branched alkyl group; R a is, identically or differently at each occurrence, H, D, or an alkyl group having 1 to 20 carbon atoms, a cyclic alkyl or alkoxy group having 3 to 40 carbon atoms, an aromatic ring system having 5 to 60 carbon ring atoms, or a heteroaromatic ring system having 5 to 60 carbon atoms, in which an H atom may be replaced by D, F, Cl, Br, I; and two or more adjacent substituents R a may here also form, together with one another, a mono- or polycyclic, aliphatic, aromatic or heteroaromatic ring systems;

[0034] In the case where Y is an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom, preferably u is 1, and Y is represented by the following formula: *-[CH(R 1 )-CH(R 2 )-Q] x -R 3 where R 1 is H or an alkyl group having 1 to 5 carbon atoms, preferably the alkyl group is a methyl group; R 2 is H or an alkyl group having 1 to 5 carbon atoms, preferably the alkyl group is a methyl group, Q is an oxygen atom, a nitrogen atom, or a sulfur atom, preferably Q is an oxygen atom; R 3 is H or a methyl group, and x is an integer, preferably x ranges from 1 to 300, more preferably from 2 to 200, and even more preferably from 4 to 100, where "*" represents the attachment point of the formula to the symbol X; or *-[(CHR 1 ) n -Q)] x -R 3 wherein n is 2 or 3, Q is an oxygen atom, a nitrogen atom, or a sulfur atom, preferably Q is an oxygen atom, and R 1 is H or a methyl group, and R 3is H or a methyl group, n is 1 to 5, preferably 1 to 3, more preferably n is 2, x is an integer, preferably x ranges from 1 to 300, more preferably from 2 to 200, even more preferably from 4 to 100, where "*" represents the attachment point of the formula to the symbol X, and Preferably, Z here represents an attachment group containing one or two S atoms or Z is a carboxyl group, preferably Z is [ka] and more preferably [ka] where "#" represents the point of attachment to the group X, and "*" represents the point of attachment to the surface of the light emitting portion.

[0035] Consequently, the weight ratio of the chemical compounds is believed to be highly desirable to control the viscosity / solubility of the composition, and to prevent the viscosity of the composition from increasing and / or to maintain good solubility of the photoluminescent moieties in the composition during long-term storage.

[0036] - Reactive Monomers It is believed that lower viscosity is important for making low-viscosity compositions suitable for inkjet printing.Therefore, (meth)acrylate monomers having viscosity values ​​within the above-mentioned parameter ranges are particularly suitable for making compositions for inkjet printing.By using these (meth)acrylate monomers in the composition, when it is mixed with another material such as semiconductive luminescent nanoparticles at high loading, the composition can still keep a lower viscosity within the range suitable for inkjet printing.

[0037] In a preferred embodiment of the invention, the boiling point (BP) of the reactive monomer is above 250°C, preferably in the range of 250°C to 350°C, even more preferably 280°C to 350°C, and even more preferably 300°C to 348°C for large area uniform inkjet printing.

[0038] The high boiling point is also important for making a composition for large area uniform printing with a smaller vapor pressure (preferably less than 0.001 mmHg), and it is believed that in order to make a composition suitable for large area uniform inkjet printing, it is preferable to use reactive monomers, preferably (meth)acrylate monomers, more preferably (meth)acrylate monomers represented by formula (I), (II), and / or (III), having a viscosity value of 25 cP or less at 25° C. and a boiling point of at least 250° C. or more (preferably in the range of 250° C. to 350° C., more preferably 300° C. to 348° C.), even when mixed with another material with a high load (such as a semiconductive luminescent nanoparticle with a high load).

[0039] Here, the term "(meth)acrylate" is a general term for acrylate and methacrylate. Thus, according to the present invention, the term "(meth)acrylate monomer" means a methacrylate monomer and / or an acrylate monomer. According to the present invention, the BP can be estimated by known methods, such as those described in Science of Petroleum, Vol. II. p. 1281 (1398).

[0040] According to the present invention, any type of publicly available acrylates and / or methacrylates represented by chemical formula (I) or (II) may be preferably used. In particular, in the first aspect, any type of publicly available acrylate and / or methacrylate represented by formula (I), (II), and / or (III) having a viscosity value of 25 cP or less at 25° C. may be used.

[0041] Thus, according to the present invention, the reactive monomer of the composition is preferably a (meth)acrylate monomer selected from a mono-, di-, or tri-(meth)acrylate monomer, more preferably it is a (meth)acrylate monomer having the following formula (II): [ka] X 3 is an unsubstituted or substituted alkyl group, aryl group, or alkoxy group; Preferably, the symbol X 3 teeth, [ka] where the "*" on the left side of the formula represents the terminal group C=CR of formula (I). 5 represents a connection point to; l is 0 or 1; R 5 is a hydrogen atom, a halogen atom Cl, Br, or F, a methyl group, an alkyl group, an aryl group, an alkoxy group, an ester group, or a carboxylic acid group; R 6 R is a linear alkylene or alkoxylene chain having 1 to 25 carbon atoms, preferably 6 is a linear alkylene or alkoxylene chain having 1 to 15 carbon atoms, more preferably 1 to 5 carbon atoms, These are one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a)2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; R 7 is a linear alkylene or alkoxylene chain having 1 to 25 carbon atoms, preferably R 7 is a linear alkylene or alkoxylene chain having 1 to 15 carbon atoms, more preferably 1 to 5 carbon atoms, These are one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a )2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; R a is, identically or differently at each occurrence, H, D, or an alkyl group having 1 to 20 carbon atoms, a cyclic alkyl or alkoxy group having 3 to 40 carbon atoms, an aromatic ring system having 5 to 60 carbon ring atoms, or a heteroaromatic ring system having 5 to 60 carbon atoms, in which an H atom may be replaced by D, F, Cl, Br, I; a may also here form together mono- or polycyclic, aliphatic, aromatic or heteroaromatic ring systems, It is represented by:

[0042] In a preferred embodiment, the composition further comprises a (meth)acrylate monomer represented by the following formula (I) and / or a (meth)acrylate monomer represented by the following formula (III): [ka] During the ceremony X 1 is an unsubstituted or substituted alkyl group, aryl group, or an alkoxy group or an ester group; X 2 is an unsubstituted or substituted alkyl group, aryl group, or an alkoxy group or an ester group; R 1 is a hydrogen atom, a halogen atom Cl, Br, or F, a methyl group, an alkyl group, an aryl group, an alkoxy group, an ester group, or a carboxylic acid group; R 2 is a hydrogen atom, a halogen atom Cl, Br, or F, a methyl group, an alkyl group, an aryl group, an alkoxy group, an ester group, or a carboxylic acid group; Preferably, the symbol X 1 teeth, [ka] where the "*" on the left side of the formula represents the terminal group C=CR of formula (I). 1 and the "*" on the right represents the attachment point to the carbon atom of the symbol X in formula (I). 2 represents a connection point to; n is 0 or 1; Preferably, the symbol X 2 teeth, [ka] where the "*" on the left side of the formula represents the symbol X in formula (I). 1 and the "*" on the right represents the terminal group C=CR of formula (I). 2 represents a connection point to; m is 0 or 1; Preferably, at least m or n is 1; R 3 is a linear alkylene chain or alkoxylene chain having 1 to 25 carbon atoms, a cycloalkane having 3 to 25 carbon atoms, or an aryl group having 3 to 25 carbon atoms, preferably R 3 is a linear alkylene or alkoxylene chain having 1 to 15 carbon atoms, more preferably 1 to 5 carbon atoms, These are one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a )2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; R 4 is a linear alkylene chain or alkoxylene chain having 1 to 25 carbon atoms, a cycloalkane having 3 to 25 carbon atoms, or an aryl group having 3 to 25 carbon atoms, preferably R 4 is a linear alkylene or alkoxylene chain having 1 to 15 carbon atoms, more preferably 1 to 5 carbon atoms, These are one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a )2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a), SO, SO2, NR a , OS, or CONR a and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; R a is, identically or differently at each occurrence, D, or an alkyl group having 1 to 20 carbon atoms, a cyclic alkyl or alkoxy group having 3 to 40 carbon atoms, an aromatic ring system having 5 to 60 carbon ring atoms, or a heteroaromatic ring system having 5 to 60 carbon atoms, in which H atoms may be replaced by D, F, Cl, Br, I; a may also here together form a mono- or polycyclic, aliphatic, aromatic or heteroaromatic ring system; [ka] R in the formula 9 is a hydrogen atom, a linear alkyl group having 1 to 25 carbon atoms, or a group represented by the chemical formula (IV) [ka] is a (meth)acrylic group represented by: R 10 is a hydrogen atom, a linear alkyl group having 1 to 25 carbon atoms, or a group represented by the chemical formula (V) [ka] is a (meth)acrylic group represented by: R 11 is a hydrogen atom, a linear alkyl group having 1 to 25 carbon atoms, or a group represented by the chemical formula (VI) [ka] is a (meth)acrylic group represented by: R in the formula 8a , R8b , and R 8c are, each independently or dependently of each other at each occurrence, H or CH3; Here, R 9 , R 10 , and R 11 At least one of R is a (meth)acrylic group, preferably R 9 , R 10 , and R 11 is a (meth)acrylic group, and the other is a hydrogen atom or a linear alkyl group having 1 to 25 carbon atoms. Preferably, the electrical conductivity (S / cm) of the (meth)acrylate monomer represented by formula (III) is 1.0*10 -10 Less than or equal to 5.0*10 -11 Less than or equal to 5.0*10 is more preferable -11 From 1.0*10 -15 and even more preferably in the range of 5.0*10 -12 From 1.0*10 -15 It is in the range of up to.

[0043] In a preferred embodiment, the mixing ratio of the (meth)acrylate monomer represented by formula (III) to the (meth)acrylate monomer represented by formula (II) is from 1:99 to 99:1 (formula (III):formula (II)), preferably from 5:95 to 50:50, more preferably from 10:90 to 40:60, and even more preferably, it is from 15:85 to 35:65; preferably, at least purified (meth)acrylate monomer represented by formula (III), (II) is used in the composition, more preferably, both the (meth)acrylate monomer represented by formula (III) and the (meth)acrylate monomer represented by formula (II) are obtained or can be obtained by purification method.

[0044] In a preferred embodiment, the boiling point (BP) of the (meth)acrylate monomers of formula (I) and / or formula (II) is equal to or greater than 250°C, preferably the boiling point (BP) of both (meth)acrylate monomers of formula (I) and formula (II) is equal to or greater than 250°C, more preferably in the range of from 250°C to 350°C, even more preferably from 280°C to 350°C, and even more preferably from 300°C to 348°C.

[0045] According to the present invention, in a preferred embodiment, the viscosity of the composition is below 35 cP, preferably in the range of from 1 to 35 cP, more preferably from 2 to 30 cP, even more preferably from 2 to 25 cP at room temperature. According to the present invention, the viscosity can be measured at room temperature by a vibration type viscometer VM-10A (SEKONIC). https: / / www.sekonic.co.jp / english / product / viscometer / vm / vm_series.html

[0046] - (meth)acrylate monomers represented by formula (I) as matrix materials Even more preferably, the R 3 and R of formula (I) 4 are each independently selected from the following groups, where the group R a and preferably R a has not been replaced by [Table A-1] [Table A-2] [Table A-3]

[0047] Particularly preferably, the R 3 and R 4 is, at each occurrence, independently or differently, selected from the following groups: [Table B] Here, "*" is R 3 In the case of 2 represents a connection point to, and where "*" is R 4 In the case of 1 Represents a connection point to

[0048] Even more preferably, said formula (I) is NDDA (nonanediol diacrylate; BP: 342° C.), HDDMA (hexanediol dimethacrylate; BP: 307), HDDA (hexanediol diacrylate; BP: 295° C.), or DPGDA (BP: 314° C.). [ka]

[0049] - (meth)acrylate monomers represented by formula (II) It is believed that the (meth)acrylate monomer represented by the following formula (II) exhibits a viscosity value much smaller than that of the (meth)acrylate monomer represented by formula (I). Thus, by using the (meth)acrylate monomer represented by formula (II) in combination with the (meth)acrylate monomer represented by formula (I), a composition having a much smaller viscosity desired for smooth inkjet printing can be realized, preferably without decreasing the external quantum efficiency (EQE) value.

[0050] It is believed that the combination can achieve a low viscosity composition that contains a large amount of another material, such as a high loading of semiconducting luminescent nanoparticles, which is therefore particularly suitable for inkjet printing when the composition contains another material.

[0051] In a preferred embodiment of the present invention, the boiling point (BP) of the (meth)acrylate monomer of formula (II) is equal to or greater than 250°C for large area uniform inkjet printing, preferably the (meth)acrylate monomer of formula (II) has a boiling point (BP) of equal to or greater than 250°C, more preferably in the range of 250°C to 350°C, still more preferably in the range of 280°C to 350°C, and even more preferably in the range of 300°C to 348°C.

[0052] In a further preferred embodiment of the present invention, the boiling point (BP) of the (meth)acrylate monomer of formula (I) and / or the boiling point (BP) of the (meth)acrylate monomer of formula (II) is equal to or greater than 250°C for large area uniform inkjet printing, preferably the boiling point (BP) of both (meth)acrylate monomers of formula (I) and formula (II) is equal to or greater than 250°C, more preferably in the range of 250°C to 350°C, still more preferably 280°C to 350°C, even more preferably 300°C to 348°C.

[0053] Even more preferably, the R 7 is independently or differently selected from the following groups at each occurrence, where the groups R a and preferably R a has not been replaced by [Table C] where "*" means that l is 1, and X 3 R 6 represents a connection point to X in formula (II) when n is 0. 3 represents the connection point to the oxygen atom of

[0054] Even more preferably, said formula (II) is lauryl methacrylate (LM, viscosity 6 cP, BP: 142°C) or lauryl acrylate (LA, viscosity: 4.0 cP, BP: 313.2°C).

[0055] It is believed that a higher amount of the (meth)acrylate monomer represented by formula (II) relative to the total amount of the (meth)acrylate monomer represented by formula (I) leads to an improved EQE of the composition, and a mixing weight ratio of the (meth)acrylate monomer represented by formula (II) relative to the total amount of the (meth)acrylate monomer represented by formula (I) of less than 50 wt.% is preferred in terms of the viscosity of the composition and better ink jetting properties of the composition.

[0056] Preferably, a (meth)acrylate monomer purified by using a silica column is used. It is believed that the removal of impurities from the (meth)acrylate monomers by silica column purification leads to improved QY of the semiconducting luminescent nanoparticles in the composition.

[0057] - (meth)acrylate monomers represented by formula (III) The (meth)acrylate monomers of formula (III) are believed to be useful in improving the solidity of the composition subsequently produced after inkjet printing. According to the present invention, publicly known (meth)acrylate monomers represented by the following chemical formula (III) can be used to improve the solidity of the layer after inkjet printing and crosslinking.

[0058] Very preferably, trimethylolpropane triacrylate (TMPTA) is used as the (meth)acrylate monomer of formula (III). In a preferred embodiment of the present invention, the amount of (meth)acrylate monomer represented by formula (III) is in the range of 0.001 wt.% to 25 wt.%, more preferably 0.1 wt.% to 15 wt.%, still more preferably 1 wt.% to 10 wt.%, and even more preferably 3 to 7 wt.%, based on the total amount of (meth)acrylate monomers in the composition.

[0059] Preferably, a (meth)acrylate monomer purified by using a silica column is used. It is believed that the removal of impurities from the (meth)acrylate monomers by silica column purification leads to improved QY of the semiconducting luminescent nanoparticles in the composition. According to the invention, preferably the composition is adapted to exhibit an EQE value of greater than or equal to 23%, preferably greater than or equal to 24% and less than 95%, preferably less than 50%.

[0060] According to the invention, the EQE is measured at room temperature by the following EQE measurement process, which is based on using an integrating sphere with a 450 nm excitation light source coupled via an optical fiber and a spectrometer (Compass X, BWTEK) and consists of a first measurement detecting the incident photons of the excitation light using air as a reference, and a second measurement with a sample or test cell placed before the integrating sphere between the aperture of the integrating sphere and the exit of the optical fiber detecting the incident photons from the excitation light source that have passed through the sample and the photons emitted from the sample or test cell, in both cases the photons leaving the integrating sphere are counted by the spectrometer, the calculation of EQE and BL is done by the following equations, and the number of photons of the excitation light and the emitted light are calculated by integration over the following wavelength ranges; EQE = photons [emitted light] / photons [excitation light measured in place without sample]; BL=photons[excitation light measured in place with sample] / photons[excitation light measured in place without sample]; Emitted light when green light emitting part is used: 490nm~600nm, Emitted light when red light emitting part is used: 560nm~780nm Excitation light: 390nm~490nm.

[0061] According to the present invention, in a preferred embodiment, the viscosity of the composition is below 35 cP, preferably in the range of from 1 to 35 cP, more preferably from 2 to 30 cP, even more preferably from 2 to 25 cP at room temperature.

[0062] In a preferred embodiment of the invention, the composition comprises 10 wt % or less, more preferably 5 wt % or less of a solvent based on the total weight of the composition, more preferably the composition is a solvent-free composition, and preferably the composition does not comprise any one of the following solvents selected from one or more members of the group consisting of: ethylene glycol monoalkyl ethers, such as ethylene glycol monomethyl ether, ethylene glycol monoethyl ether, ethylene glycol monopropyl ether, and ethylene glycol monobutyl ether; diethylene glycol dialkyl ethers, such as diethylene glycol dimethyl ether, diethylene glycol diethyl ether, diethylene glycol dipropyl ether, and diethylene glycol dibutyl ether; propylene glycol monomethyl ether (PGME), propylene glycol monoethyl ether, and propylene glycol monopropyl ether. propylene glycol alkyl ether acetates, such as methyl cellosolve acetate and ethyl cellosolve acetate; propylene glycol alkyl ether acetates, such as propylene glycol monomethyl ether acetate (PGMEA), propylene glycol monoethyl ether acetate, and propylene glycol monopropyl ether acetate; ketones, such as methyl ethyl ketone, acetone, methyl amyl ketone, methyl isobutyl ketone, and cyclohexanone; alcohols, such as ethanol, propanol, butanol, hexanol, cyclohexanol, ethylene glycol, triethylene glycol, and glycerin; esters, such as ethyl 3-ethoxypropionate, methyl 3-methoxypropionate, and ethyl lactate; and cyclic esters, such as gamma-butyro-lactone;Chlorinated hydrocarbons such as chloroform, dichloromethane, chlorobenzene, trimethylbenzenes, such as 1,3,5-trimethylbenzene, 1,2,4-trimethylbenzene, 1,2,3-trimethylbenzene, dodecylbenzene, cyclohexylbenzene, 1,2,3,4-tetramethylbenzene, 1,2,3,5-tetramethylbenzene, 3-isopropylbiphenyl, 3-methylbiphenyl, 4-methylbiphenyl, and dichlorobenzene; preferably, the solvent is propylene glycol alkyl ether acetate, alkyl acetate, ethylene glycol monoalkyl ether, propylene glycol, and propylene glycol monoalkyl ether;

[0063] It is believed that less than 10 wt % solvent in the composition may lead to improved ink jetting and avoid ink jetting more than once on the same pixel after evaporation of the solvent. According to the present invention, it is desirable not to add any solvent in order to achieve improved uniformity and large area inkjet printing without causing any clogging at the nozzles and / or with good dispersion of the semiconducting luminescent nanoparticles and / or with good dispersion of the scattering particles.

[0064] According to the invention, preferably the composition comprises: iii) another light-emitting moiety different from the light-emitting moiety described in claim 1 (preferably the light-emitting moiety comprises a ligand, more preferably the light-emitting moiety comprises an alkyl-type ligand having 2 to 25 carbon atoms); iv) another (meth)acrylate monomer; v) scattering particles, and vi) optically transparent polymers, antioxidants, radical quenchers, photoinitiators, and / or surfactants. The composition further comprises another material selected from one or more members of the group consisting of:

[0065] In some embodiments of the present invention, the composition of the present invention preferably comprises: v) scattering particles; and vii) at least one polymer, the polymer being configured to allow scattering particles to be dispersed in the composition; wherein the polymer comprises at least a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, a phosphonic acid, or a combination thereof, preferably the polymer comprises a tertiary amine, a phosphine oxide group, a phosphonic acid, or a phosphate group.

[0066] According to the invention, a polymer configured to allow scattering particles to be dispersed in a composition comprises at least a repeat unit A comprising a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, a phosphonic acid, or a combination thereof, preferably the repeat unit A comprises a tertiary amine, a phosphine oxide group, a phosphonic acid, or a phosphate group. In some embodiments of the present invention, repeat unit A and repeat unit B are constitutional repeat units.

[0067] Even more preferably, the repeat unit A has the following formula (VII): NR 12 R 13 R 14 - -(VII) wherein R 12 is a hydrogen atom, a linear or branched alkyl group having 1 to 30 carbon atoms, or an aryl group having 1 to 30 carbon atoms; R 13 is a hydrogen atom, a linear or branched alkyl group having 1 to 30 carbon atoms, or an aryl group having 1 to 30 carbon atoms; R 12 and R 13 may be the same or different from each other; R 14represents a single bond, a linear or branched alkylene group having 1 to 30 carbon atoms, an alkenylene group having 1 to 30 carbon atoms, or a (poly)oxaalkylene group having 1 to 30 carbon atoms.

[0068] Even more preferably, R 12 is a linear or branched alkyl group having 1 to 30 carbon atoms; R 13 is a linear or branched alkyl group having 1 to 30 carbon atoms; R 12 and R 13 can be the same or different from each other. Even more preferably, R 12 is a methyl group, an ethyl group, an n-propyl group, or an n-butyl group; R 13 is a methyl group, an ethyl group, an n-propyl group, or an n-butyl group. According to the present invention, in a preferred embodiment, repeat unit A does not contain a salt.

[0069] In a preferred embodiment of the invention, the polymer is a copolymer selected from the group consisting of graft copolymers, block copolymers, alternating copolymers, and random copolymers, preferably the copolymer comprises repeating units A and repeating units B that do not include any phosphine groups, phosphine oxide groups, phosphate groups, phosphonate groups, thiol groups, tertiary amines, carboxyl groups, heterocyclic groups, silane groups, sulfonic acids, hydroxyl groups, phosphonic acids, and combinations thereof, more preferably the copolymer has the following chemical formula (VIII) or (IX): A n - B m -(VIII) B o - A n - B m -(IX) wherein the symbol "A" represents repeat unit A; the symbol "B" is taken to mean repeat unit B; the symbols "n", "m" and "o" at each occurrence, independently or independently of each other, are integers from 1 to 100, preferably from 5 to 75, more preferably from 7 to 50; even more preferably, the repeat unit B comprises a polymer chain selected from the group consisting of (poly)ethylene, (poly)phenylene, polydivinylbenzene, (poly)ether, (poly)ester, (poly)amide, (poly)urethane, (poly)carbonate, polylactic acid, (poly)vinyl ester, (poly)vinyl ether, polyvinyl alcohol, polyvinylpyrrolidone, cellulose, and any derivative thereof.

[0070] In a preferred embodiment of the invention, the polymer chain of repeat unit B is polyethylene glycol. More preferably, the repeat unit B is represented by the following formula (X): [ka] In the chemical formula (X), R 15 is a hydrogen atom or a methyl group; R 16 is an alkyl group having 1 to 10 carbon atoms; and n is an integer from 1 to 5, and "*" represents the point of attachment to another polymer repeat unit or to the end of the polymer.

[0071] Even more preferably, R 15 may be a hydrogen atom or a methyl group, R 16 can be an ethyl group, and n is an integer from 1 to 5. In some embodiments of the present invention, the surface of the core of the semiconducting luminescent nanoparticles, or the outermost surface of one or more shell layers, may be partially or completely overcoated with a polymer. By using the ligand exchange method, for example as described by Thomas Nann, Chem. Commun., 2005, 1735-1736, DOI:10.1039 / b-414807j, polymers can be introduced onto the core surface or the outermost surface of the core of semiconducting luminescent nanoparticles.

[0072] According to the present invention, in some embodiments, the content of the polymer is in the range of 1% to 500% by weight, more preferably in the range of 20% to 350% by weight, and even more preferably in the range of 50% to 200% by weight, based on the total weight of the semiconducting luminescent nanoparticles. In a preferred embodiment of the invention, the weight average molecular weight (Mw) of the polymer is in the range of from 200 g / mol to 30,000 g / mol, preferably from 250 g / mol to 5,000 g / mol, more preferably from 300 g / mol to 2,000 g / mol. Molecular weight M w is determined using GPC (=gel permeation chromatography) against internal polystyrene standards.

[0073] As polymers, commercially available wetting and dispersing additives which can be dissolved in non-polar and / or low polarity organic solvents can be preferably used. For example, BYK-111, BYK-LPN6919, BYK-103, BYK-P104, BYK-163 (trademark, from BYK com.), TERPLUS MD1000 series, e.g., MD1000, MD1100 (trademark, from Otsuka Chemical), poly(ethylene glycol) methyl ether amine (Sigma-Ald 767565 (trademark, from Sigma Aldrich), polyester bis-MPA dendron, 32 hydroxyl, 1 thiol, (Sigma-Ald 767115 (trademark, from Sigma Aldrich), LIPONOL DA-T / 25 (from Lion Specialty Chemicals Co.), carboxymethyl cellulose (from Polyscience, etc.), "Marc Thiry et.al., ACSNANO, American Chemical society, Vol. 5, No. 6, pp 4965-4973, 2011", "Kimihiro This is another wetting and dispersing additive disclosed in "Susumu, et. al., J. Am. Chem. Soc. 2011, 133, pp9480-9496."

[0074] Thus, in some embodiments of the invention, the composition comprises at least a (meth)acrylate monomer of formula (I), a (meth)acrylate monomer of formula (II), and a polymer configured to disperse scattering particles in the composition, wherein the mixing ratio of (meth)acrylate monomer of formula (I):(meth)acrylate monomer of formula (II):polymer is in the range of 10:89:1 to 50:40:10, preferably 15:82:3 to 30:60:10.

[0075] In some embodiments of the invention, the composition comprises at least a (meth)acrylate monomer of formula (III), a (meth)acrylate monomer of formula (II), and a polymer, the polymer configured to disperse scattering particles in the composition, wherein the mixing ratio of the (meth)acrylate monomer of formula (III):(meth)acrylate monomer of formula (II):polymer is in the range of 10:89:1 to 50:40:10, preferably 15:82:3 to 30:60:10.

[0076] In some embodiments of the present invention, the composition at least comprises, consists essentially of, or consists of a polymer derived or derivable from the (meth)acrylate monomers of the present composition. In a preferred embodiment of the invention, the polymer is or can be derived from all (meth)acrylate monomers in the composition, for example at least the (meth)acrylate monomers of formula (I) and / or the (meth)acrylate monomers of formula (II).

[0077] v) scattering particles According to the present invention, as scattering particles, publicly known small particle inorganic oxides such as SiO2, SnO2, CuO, CoO, Al2O3TiO2, Fe2O3, Y2O3, ZnO, ZnS, MgO, organic particles such as polymerized polystyrene, polymerized PMMA, inorganic hollow oxides such as hollow silica, or any combination thereof may be used. The amount of scattering particles is preferably less than or equal to 8 wt%, preferably in the range of 4 to 0 wt%, more preferably in the range of 1 to 0 wt%, based on the total solid content of the layer, and more preferably the layer and / or composition does not contain any scattering particles.

[0078] In some embodiments of the present invention, the composition comprises: iii) at least one semiconducting luminescent nanoparticle comprising first semiconducting nanoparticles, optionally one or more shell layers covering at least a portion of the first semiconducting nanoparticles, preferably the composition has an EQE value of 23% or more, preferably 24% or more and less than 95%, preferably less than 50%. According to the present invention, as transparent polymers a wide variety of publicly known transparent polymers suitable for optical devices, as described, for example, in WO 2016 / 134820A, may be preferably used.

[0079] According to the present invention, the term "transparent" means a transmission of at least approximately 60% of incident light at the thickness used for the optical medium and at the wavelength or range of wavelengths used during operation of the optical medium. Preferably, it is greater than 70%, more preferably greater than 75%, and most preferably greater than 80%. According to the present invention, the term "polymer" means a material having repeating units and having a weight average molecular weight (Mw) of 1000 g / mol or more.

[0080] Molecular weight M w is determined using GPC (=gel permeation chromatography) against internal polystyrene standards. In some embodiments of the present invention, the transparent polymer has a glass transition temperature (Tg) of 70°C or more and 250°C or less.

[0081] The Tg is measured based on the change in heat capacity observed in differential scanning calorimetry as described in Rickey J Seyler, Assignment of the Glass Transition, ASTM publication code number (PCN) 04-012490-50. For example, poly(meth)acrylate, epoxy, polyurethane, polysiloxane may be preferably used as a transparent polymer for the transparent matrix material.

[0082] In a preferred embodiment of the present invention, the weight average molecular weight (Mw) of the polymer as the transparent matrix material is in the range of from 1,000 to 300,000 g / mol, more preferably from 10,000 to 250,000 g / mol. According to the present invention, publicly known antioxidants, radical quenchers, photoinitiators and / or surfactants may be preferably used, as described in WO 2016 / 134820A.

[0083] - Light emitting part(110) In a preferred embodiment of the present invention, the light emitting portion (110) is an organic and / or inorganic light emitting material, preferably a semiconducting light emitting nanoparticle such as an organic dye, an inorganic phosphor, and / or a quantum dot material. In some embodiments of the present invention, the total amount of the light-emitting portion (110) is in the range of 0.1 wt.% to 90 wt.%, preferably 10 wt.% to 70 wt.%, and more preferably 30 wt.% to 50 wt.%, based on the total amount of the first pixel (161).

[0084] - iii) Semiconducting luminescent nanoparticles According to the present invention, the term "semiconductor" refers to a material that has an electrical conductivity at room temperature that is between that of a conductor (such as copper) and that of an insulator (such as glass). Preferably, a semiconductor is a material whose electrical conductivity increases with temperature. The term "nano-sized" means a size between 0.1 nm and 150 nm, more preferably between 3 nm and 50 nm.

[0085] Thus, according to the present invention, "semiconductive luminescent nanoparticles" is taken to mean luminescent materials whose size is between 0.1 nm and 150 nm, more preferably between 3 nm and 50 nm, and which have an electrical conductivity at room temperature that is between that of a conductor (such as copper) and that of an insulator (such as glass); preferably semiconductors are materials whose electrical conductivity increases with temperature and whose size is between 0.1 nm and 150 nm, preferably 0.5 nm to 150 nm, more preferably 1 nm to 50 nm. According to the present invention, the term "size" means the average diameter of a circle with an area equal to the average area of ​​the dark contrast features in the TEM image.

[0086] The average diameter of the semiconducting nano-sized luminescent particles is calculated based on 100 semiconducting luminescent nanoparticles in the TEM images made by a Tecnai G2 Spirit Twin T-12 Transmission Electron Microscope. In a preferred embodiment of the present invention, the semiconducting luminescent nanoparticles of the present invention are quantum-sized materials. According to the present invention, the term "quantum size" refers to the size of the semiconducting material itself, without any ligands or other surface modifications, which may exhibit quantum confinement effects, as described, for example, in ISBN: 978-3-662-44822-9.

[0087] For example, CdS, CdSe, CdTe, ZnS, ZnSe, ZnSeS, ZnTe, ZnO, GaAs, GaP, GaSb, HgS, HgSe, HgSe, HgTe, InAs, InP, InPZn, InPZnS, InPZnSe, InPZnSeS, InPZnGa, InPGaS, InPGaSe, InPGaSeS, InPZnGaSeS, and alloys of InPGa, InCdP, InPCdS, InPCdSe, InSb, AlAs, AlP, AlSb, CuS, CuSe, CuInS2, CuInSe2, Cu2(ZnSn)S4, Cu2(InGa)S4, TiO2, and any combination thereof may be used.

[0088] In a preferred embodiment of the invention, the first semiconducting material comprises at least one element from group 13 of the periodic table and one element from group 15 of the periodic table, preferably the element from group 13 is In and the element from group 15 is P, more preferably the first semiconducting material is selected from the group consisting of InP, InPZn, InPZnS, InPZnSe, InPZnSeS, InPZnGa, InPGaS, InPGaSe, InPGaSeS, InPZnGaSeS, and InPGa.

[0089] According to the present invention, the type of shape of the core of the semiconducting luminescent nanoparticles and the shape of the synthesized semiconducting luminescent nanoparticles are not specifically limited. For example, spherically shaped, elongated, star-shaped, polyhedral-shaped, pyramidal-shaped, tetrapod-shaped, tetrahedral-shaped, platelet-shaped, cone-shaped, and irregularly shaped core and-or semiconducting luminescent nanoparticles can be synthesized.

[0090] In some embodiments of the invention, the average diameter of the core is in the range of 1.5 nm to 3.5 nm. The average core diameter is calculated based on 100 semiconducting luminescent nanoparticles in TEM images produced by a Tecnai G2 Spirit Twin T-12 Transmission Electron Microscope by measuring the longest axis of each single particle.

[0091] In some embodiments of the invention, at least one shell layer comprises or consists of a first element from group 12 of the periodic table and a second element from group 16 of the periodic table, preferably the first element is Zn and the second element is S, Se, or Te; preferably the first shell layer directly on the core comprises or consists of a first element from group 12 of the periodic table and a second element from group 16 of the periodic table, preferably the first element is Zn and the second element is S, Se, or Te.

[0092] In a preferred embodiment of the present invention, at least one shell layer (first shell layer) is represented by the following formula (XI), preferably the shell layer directly covering the core is represented by chemical formula (XI): ZnS x Se y Te z -(XI) In the formula, 0≦x≦1, 0≦y≦1, 0≦z≦1, and x+y+z=1, preferably 0≦x≦1, 0≦y≦1, z=0, and x+y=1. Preferably, the shell layer is ZnSe, ZnS, ZnS x Se y、 ZnSe y Te z , or ZnS x Te z It is.

[0093] In some embodiments of the present invention, the shell layer is an alloy shell layer or a graded shell layer, preferably the graded shell layer is ZnS. x Se y , ZnSe y Te z , or ZnS x Te z , more preferably ZnS x Se y It is. In some embodiments of the present invention, the semiconducting luminescent nanoparticles further comprise a second shell layer on the shell layer, preferably the second shell layer comprises or consists of a third element from group 12 of the periodic table and a fourth element from group 16 of the periodic table, more preferably the third element is Zn and the fourth element is S, Se, or Te, provided that the fourth element and the second element are not the same.

[0094] In a preferred embodiment of the present invention, the second shell layer is represented by the following formula (XI'): ZnS x Se y Te z -(XI') where 0≦x≦1, 0≦y≦1, 0≦z≦1, and x+y+z=1. Preferably, the shell layer is ZnSe, ZnSx Se y , ZnSe y Te z , or ZnS x Te z with the proviso that the shell layer and the second shell layer are not the same.

[0095] In some embodiments of the present invention, the second shell layer can be an alloy shell layer. In some embodiments of the present invention, the semiconducting luminescent nanoparticles may further comprise one or more additional shell layers on the second shell layer as a multishell. According to the present invention, the term "multishell" refers to a stacked shell layer consisting of three or more shell layers.

[0096] For example, CdSe / CdS, CdSeS / CdZnS, CdSeS / CdS / ZnS, ZnSe / CdS, CdSe / ZnS, InP / ZnS, InP / ZnSe, InP / ZnSe / ZnS, InZnP / ZnS, InZnP / ZnSe, InZnP / ZnSe / ZnS, InGaP / ZnS, InGaP / ZnSe, InGaP / ZnSe / ZnS, InZnPS / ZnS, InZnPS ZnSe, InZnPS / ZnSe / ZnS, ZnSe / CdS, ZnSe / ZnS, or any combination thereof may be used. Preferably, InP / ZnS, InP / ZnSe, InP / ZnSe / ZnS, InZnP / ZnS, InZnP / ZnSe, InZnP / ZnSe / ZnS, InGaP / ZnS, InGaP / ZnSe, InGaP / ZnSe / ZnS.

[0097] Such semiconducting luminescent nanoparticles are publicly available (e.g., from Sigma Aldrich) and / or can be synthesized by methods described, for example, in US 7,588,828 B, US 8,679,543 B, and Chem. Mater. 2015, 27, pp 4893-4898. In some embodiments of the present invention, the composition comprises two or more semiconducting luminescent nanoparticles.

[0098] In some embodiments of the present invention, the composition comprises a plurality of semiconducting luminescent nanoparticles. In some embodiments of the present invention, the total amount of semiconducting luminescent nanoparticles ranges from 0.1 wt.% to 90 wt.%, preferably from 10 wt.% to 70 wt.%, and more preferably from 15 wt.% to 50 wt.%, based on the total amount of the composition.

[0099] - Ligand In some embodiments of the present invention, optionally, the luminescent portion may be directly overcoated with one or more ligands, or the outermost surface of the inorganic portion of the semiconducting luminescent nanoparticle may be directly overcoated with ligands. Alternatively, the ligand-coated semiconducting luminescent nanoparticles may be overcoated with a polymer to form a polymer bead having the semiconducting luminescent nanoparticle(s) therein.

[0100] As ligands, phosphines and phosphine oxides, such as trioctylphosphine oxide (TOPO), trioctylphosphine (TOP), and tributylphosphine (TBP); phosphonic acids, such as dodecylphosphonic acid (DDPA), tridecylphosphonic acid (TDPA), octadecylphosphonic acid (ODPA), and hexylphosphonic acid (HPA); amines, such as oleylamine, dodecylamine (DDA), tetradecylamine (TDA), hexadecylamine (HDA). and thiols such as octadecylamine (ODA), oleylamine (OLA), 1-octadecene (ODE), hexadecanethiol, and hexanethiol; mercaptocarboxylic acids such as mercaptopropionic acid and mercaptoundecanoic acid; carboxylic acids such as oleic acid, stearic acid, myristic acid; acetic acid, polyethyleneimine (PEI), monofunctional PEG thiol (mPEG-thiol) or derivatives of mPEG thiol, and any combination thereof may also be used.

[0101] Examples of such ligands are described, for example, in International Patent Application Publication No. WO 2012 / 059931A.

[0102] - Use of the composition In another aspect, the invention relates to the use of the compositions of the invention in electronic, optical, sensing or biomedical devices, or for fabricating electronic, sensing, optical or biomedical devices.

[0103] - Layers containing the compositions and processes for making the layers In another aspect, the invention relates to a layer containing the composition of the invention.

[0104] In another aspect, the present invention relates to a layer comprising, consisting essentially of, or consisting of at least: I) a (meth)acrylate polymer (preferably which is obtained or obtainable from the reactive monomers in the composition of the present invention); II) a light-emitting portion; and III) unsaturated linear alkyl groups having 1 to 45 carbon atoms; unsaturated or saturated linear alkyl groups having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; unsaturated or saturated branched alkyl groups having 3 to 45 carbon atoms; linear alkenyl groups having 2 to 45 carbon atoms; branched alkenyl groups having 3 to 45 carbon atoms; unsaturated or saturated branched alkyl groups having 1 to 45 carbon atoms. or saturated linear or branched alkoxyl groups; unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms; chemical compounds containing at least one group selected from unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Preferably, the group is selected from an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, wherein one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; More preferably, it is selected from an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms or an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the carbon atoms of the alkyl, alkenyl and / or alkoxy groups range from 10 to 35, more preferably from 14 to 30; Even more preferably, it is an unsaturated or saturated linear alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the chain contains from 1 to 5 carbon-carbon double bonds, more preferably from 1 to 3 carbon-carbon double bonds, even more preferably 2 carbon-carbon double bonds; Here, the chemical compound is not a polymer.

[0105] In a preferred embodiment, the layer thickness is in the range of from 1 to 50 um, preferably from 5 to 30, more preferably from 8 to 20, even more preferably from 10 to 15 um.

[0106] In another aspect, the present invention relates to a process for making the layer of the present invention, wherein the process comprises, consists essentially of, or consists of at least the following steps: I) providing a composition of the present invention on a substrate, preferably II) curing the composition, preferably said curing is carried out by light irradiation and / or heat treatment. In another aspect, the invention relates to a layer obtained or obtainable from the process.

[0107] - Color conversion device(100) A color conversion device (100) comprising at least a first pixel (161) partially or completely filled with a layer according to any one of claims 20 to 22 and 24, the layer including at least a matrix material (120) containing a light-emitting portion (110), and a bank (150) including at least a polymer material, and preferably the color conversion device (100) further comprises a support medium (170).

[0108] - 1st pixel(161) According to the present invention, said first pixel (161) comprises a matrix material (120) containing at least a light-emitting portion (110). In a preferred embodiment, said first pixel (161) is a solid layer obtained or obtainable by curing an inventive composition containing at least one acrylate monomer with at least one light-emitting portion (110), preferably said curing being photocuring by irradiation with light, thermal curing or a combination of photocuring and thermal curing.

[0109] In some embodiments of the invention, the layer thickness of the pixel (161) is in the range of 0.1 to 100 μm, preferably 1 to 50 μm, more preferably 5 to 25 μm.

[0110] In some embodiments of the present invention, the color conversion device (100) further contains a second pixel (162), and preferably the device (100) contains at least the first pixel (161), the second pixel (162), and the third pixel (163), and more preferably the first pixel (161) is a red pixel, the second pixel (162) is a green pixel, and the third pixel (163) is a blue pixel, and even more preferably the first pixel (161) contains a red light-emitting portion (110R), the second color pixel (162) contains a green light-emitting portion (110G), and the third pixel (163) does not contain any light-emitting portion.

[0111] In some embodiments, at least one pixel (160) additionally comprises at least one light scattering particle (130) in the matrix material (120), and preferably, the pixel (160) contains multiple light scattering particles (130). In some embodiments of the invention, the first pixel (161) consists of one pixel or two or more sub-pixels configured to emit red light when illuminated by excitation light, and more preferably the sub-pixels contain the same light-emitting portion (110).

[0112] - Matrix Materials(120) In a preferred embodiment, the matrix material (120) comprises a (meth)acrylate polymer, preferably a methacrylate polymer, an acrylate polymer, or a combination thereof, more preferably an acrylate polymer, even more preferably, the matrix material (120) is obtained or obtainable from a composition of the present invention containing at least one acrylate monomer, even more preferably, the matrix material (120) is obtained or obtainable from a composition of the present invention containing at least one di-acrylate monomer, and even more preferably, the matrix material (120) is obtained or obtainable from a composition of the present invention containing at least one di-acrylate monomer and a mono-acrylate monomer, preferably, the composition is a photosensitive composition.

[0113] - Bank (150) In some embodiments of the invention, the height of the banks (150) is in the range of 0.1 to 100 μm, preferably 1 to 50 μm, more preferably 1 to 25 μm, and even more preferably 5 to 20 μm.

[0114] In a preferred embodiment of the present invention, the bank (150) is configured to determine the area of ​​the first pixels (161), and at least a portion of the bank (150) is in direct contact with at least a portion of the first pixels (161), and preferably the second polymer of the bank (150) is in direct contact with at least a portion of the first polymer of the first pixels (161).

[0115] More preferably, the bank (150) is photolithographically patterned and the first pixel (161) is surrounded by the bank (150), and preferably the first pixel (161), second pixel (162), and third pixel (163) are all surrounded by the photolithographically patterned bank (150).

[0116] - Process In another aspect, the present invention also relates to a process for making the composition of the present invention comprising, consisting essentially of or consisting of the following steps Y1 and Y2, preferably in that order, or Y3; Y1) mixing at least one light-emitting moiety and a reactive monomer to form a first composition; Y2) The first composition is selected from the group consisting of an unsaturated linear alkyl group having 1 to 45 carbon atoms; an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, where one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms; a linear alkenyl group having 2 to 45 carbon atoms; a branched alkenyl group having 3 to 45 carbon atoms; an unsaturated or saturated branched alkyl group having 1 to 45 carbon atoms. or saturated linear or branched alkoxyl groups; unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms; unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Preferably, the group is selected from an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, wherein one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; More preferably, it is selected from an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms or an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the carbon atoms of the alkyl, alkenyl and / or alkoxy groups range from 10 to 35, more preferably from 14 to 30; Even more preferably, it is an unsaturated or saturated linear alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the chain contains from 1 to 5 carbon-carbon double bonds, more preferably from 1 to 3 carbon-carbon double bonds, even more preferably 2 carbon-carbon double bonds; wherein the chemical compound is not a polymer; or Y3) at least one light-emitting moiety and a reactive monomer are selected from the group consisting of an unsaturated linear alkyl group having 1 to 45 carbon atoms; an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, where one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms; a linear alkenyl group having 2 to 45 carbon atoms; a branched alkenyl group having 3 to 45 carbon atoms; unsaturated or saturated linear or branched alkoxyl groups having 4 to 45 carbon atoms; unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms; unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Preferably, the group is selected from an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, wherein one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; More preferably, it is selected from an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms or an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the carbon atoms of the alkyl, alkenyl and / or alkoxy groups range from 10 to 35, more preferably from 14 to 30; Even more preferably, it is an unsaturated or saturated linear alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the chain contains from 1 to 5 carbon-carbon double bonds, more preferably from 1 to 3 carbon-carbon double bonds, and even more preferably 2 carbon-carbon double bonds; Here, the chemical compound is not a polymer.

[0117] In a preferred embodiment of the invention, the process comprises a purification step of the reactive monomers, more preferably said purification step being carried out prior to steps Y1) and / or Y0). Details of the compositions, such as "Reactive Monomers", "Light Emitting Moieties", and "Chemical Compounds", are described above, such as in the sections "Reactive Monomers", "Light Emitting Moieties", and "Chemical Compounds". Additional additives may be mixed as described in the "Additional Materials" section.

[0118] In another aspect, the present invention also relates to a method for fabricating the color conversion device (100) of the present invention, comprising at least the following steps, preferably in this order: Xi) providing a bank composition onto a surface of a support medium; Xii) hardening the bank composition; Xiii) applying photopatterning to the cured composition to produce banks and patterned pixel areas; Xiv) providing a composition of the present invention, preferably by ink jetting, to at least one pixel area; Xv) curing the composition. Preferably, the color converting device (100) further contains a support medium (170).

[0119] In another aspect, the present invention further relates to a color conversion device (100) obtainable or obtained from the method of the present invention. In another aspect, the present invention further relates to the use of the color conversion device (100) of the present invention in an optical device (300) containing at least one functional medium (320, 420, 520) configured to modulate light or configured to emit light.

[0120] Furthermore, in another aspect, the present invention further relates to an optical device (300) containing at least one functional medium (320, 420, 520) configured to modulate light or configured to emit light, and a color conversion device (100) of the present invention.

[0121] Preferred Aspects 1. A composition comprising at least the following, preferably consisting of a photocurable composition; i) a reactive monomer, preferably one having one or more functional groups, more preferably a (meth)acrylate monomer; ii) a light-emitting portion; and iii) unsaturated linear alkyl groups having 1 to 45 carbon atoms; unsaturated or saturated linear alkyl groups having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; unsaturated or saturated branched alkyl groups having 3 to 45 carbon atoms; linear alkenyl groups having 2 to 45 carbon atoms; branched alkenyl groups having 3 to 45 carbon atoms; unsaturated or saturated branched alkyl groups having 1 to 45 carbon atoms. or saturated linear or branched alkoxyl groups; unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms; chemical compounds containing at least one group selected from unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Preferably, the group is selected from an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, wherein one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; More preferably, it is selected from an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms or an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the carbon atoms of the alkyl, alkenyl and / or alkoxy groups range from 10 to 35, more preferably from 14 to 30; Even more preferably, it is an unsaturated or saturated linear alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the chain contains from 1 to 5 carbon-carbon double bonds, more preferably from 1 to 3 carbon-carbon double bonds, even more preferably 2 carbon-carbon double bonds; Here, the chemical compound is not a polymer.

[0122] 2. The composition of embodiment 1, wherein the chemical compound further comprises at least one group selected from one or more of the members of the group consisting of a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, a phosphonic acid, preferably the group is a phosphate group, a phosphonate group, a thiol group, a carboxyl group or any combination thereof, more preferably it is a carboxyl group.

[0123] 3. The chemical compound has the following chemical formula (X A 3. The composition of embodiment 1 or 2, represented by: Z(-X)uY -(X A ) In the formula, Z is *-R x1 or [ka] where "*" represents the connection point to the formula symbol Y, and R x1is a group selected from one or more members of the group consisting of a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, a phosphonic acid, preferably the group is a phosphonate group, a thiol group, a carboxyl group, or any combination thereof, more preferably it is a carboxyl group; and R x2 is a group selected from one or more members of the group consisting of a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, a phosphonic acid, preferably the group is a phosphonate group, a thiol group, a carboxyl group, or any combination thereof, more preferably it is a carboxyl group; X is a single bond, an alkylene group having 1 to 15 carbon atoms, or an alkenylene group having 1 to 15 carbon atoms, or a (poly)alkoxylene group having 1 to 15 carbon atoms, and preferably, Y is a (poly)alkoxylene group having 1 to 15 carbon atoms; u is 0 or 1; Y is an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, where one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms; unsaturated or saturated linear or branched alkoxyl groups having 4 to 45 carbon atoms, unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms, unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Preferably, the group is selected from an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, wherein one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; More preferably, it is selected from an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms or an unsaturated or saturated straight chain alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the carbon atoms of the alkyl, alkenyl and / or alkoxy groups range from 10 to 35, more preferably from 14 to 30; Even more preferably, it is an unsaturated or saturated linear alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the chain contains from 1 to 5 carbon-carbon double bonds, more preferably from 1 to 3 carbon-carbon double bonds, even more preferably 2 carbon-carbon double bonds; The alkyl, alkenyl and / or alkoxy groups may optionally be represented by one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a )2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably Y is a linear or branched alkyl group; R a is, identically or differently at each occurrence, H, D, or an alkyl group having 1 to 20 carbon atoms, a cyclic alkyl or alkoxy group having 3 to 40 carbon atoms, an aromatic ring system having 5 to 60 carbon ring atoms, or a heteroaromatic ring system having 5 to 60 carbon atoms, in which an H atom may be replaced by D, F, Cl, Br, I; and two or more adjacent substituents R a may here also form, together with one another, a mono- or polycyclic, aliphatic, aromatic or heteroaromatic ring systems;

[0124] In the case where Y is an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom, preferably u is 1, and Y is represented by the following formula: *-[CH(R 1 )-CH(R 2 )-Q] x -R 3 where R 1 is H or an alkyl group having 1 to 5 carbon atoms, preferably the alkyl group is a methyl group; R 2 is H or an alkyl group having 1 to 5 carbon atoms, preferably the alkyl group is a methyl group, Q is an oxygen atom, a nitrogen atom, or a sulfur atom, preferably Q is an oxygen atom; R 3 is H or a methyl group, x is an integer, preferably x ranges from 1 to 300, more preferably from 2 to 200, even more preferably from 4 to 100, where "*" represents the attachment point of the formula to the symbol X; or *-[(CHR 1 ) n -Q)] x -R 3 wherein n is 2 or 3, Q is an oxygen atom, a nitrogen atom, or a sulfur atom, preferably Q is an oxygen atom, and R 1 is H or a methyl group, and R 3is H or a methyl group, n is 1 to 5, preferably 1 to 3, more preferably n is 2, x is an integer, preferably x ranges from 1 to 300, more preferably from 2 to 200, even more preferably from 4 to 100, where "*" represents the attachment point of the formula to the symbol X, and Preferably, Z here represents an attachment group containing one or two S atoms or Z is a carboxyl group, preferably Z is [ka] and more preferably [ka] where "#" represents the point of attachment to the group X, and "*" represents the point of attachment to the surface of the light emitting portion.

[0125] 4. The composition of any one of aspects 1-3, wherein the ratio of total weight of chemical compounds:total weight of light emitting moieties is in the range of 0.6:40 to 1:3, preferably 1:40 to 1:2, more preferably 1.5:40 to 1:1; in case the light emitting moiety is an inorganic light emitting material, the ratio of weight of chemical compounds:weight of inorganic part of inorganic photoluminescent material is in the range of 0.003 to 3.2, preferably 0.006 to 2.8, more preferably 0.015 to 1.3.

[0126] 5. The composition of any one of Aspects 1-4, wherein the light emitting moiety contains at least one ligand, preferably the ligand is different from the chemical compound, preferably the ligand comprises at least one linear or branched alkyl group having 1 to 45 carbon atoms, linear or branched alkenyl group having 1 to 45 carbon atoms, or linear or branched alkoxyl group having 1 to 45 carbon atoms, more preferably the ligand contains a saturated linear alkyl group having 1 to 45 carbon atoms.

[0127] 6. The composition of any one of aspects 1-5, wherein the average diameter of the inorganic portion of the light emitting portion is in the range of from 1 nm to 18 nm, preferably from 2 to 15 nm, more preferably from 4 to 12 nm, and preferably the light emitting portion is configured to emit light having a peak maximum light wavelength in the range of from 400 to 900, more preferably from 500 to 850 nm, and even more preferably from 515 to 820 nm (intended to move 590 nm to 800 nm in the description).

[0128] 7. The reactive monomer is a (meth)acrylate monomer selected from a mono-(meth)acrylate monomer, a di-(meth)acrylate monomer, or a tri-(meth)acrylate monomer, more preferably it is a di-methacrylate monomer or a di-acrylate monomer, a tri-methacrylate monomer, a tri-acrylate monomer, and even more preferably it is a monomer represented by the following formula (II); [ka] Represented by; X 3 is an unsubstituted or substituted alkyl group, aryl group, or alkoxy group; Preferably, the symbol X 3 teeth, [ka] where the "*" on the left side of the formula represents the terminal group C=CR of formula (I). 5 represents a connection point to; l is 0 or 1; R 5 is a hydrogen atom, a halogen atom Cl, Br, or F, a methyl group, an alkyl group, an aryl group, an alkoxy group, an ester group, or a carboxylic acid group; R 6 R is a linear alkylene or alkoxylene chain having 1 to 25 carbon atoms, preferably 6is a linear alkylene or alkoxylene chain having 1 to 15 carbon atoms, more preferably 1 to 5 carbon atoms, These are one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a )2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; R 7 is a linear alkylene or alkoxylene chain having 1 to 25 carbon atoms, preferably R 7 is a linear alkylene or alkoxylene chain having 1 to 15 carbon atoms, more preferably 1 to 5 carbon atoms, These are one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a )2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; R ais, identically or differently at each occurrence, H, D, or an alkyl group having 1 to 20 carbon atoms, a cyclic alkyl or alkoxy group having 3 to 40 carbon atoms, an aromatic ring system having 5 to 60 carbon ring atoms, or a heteroaromatic ring system having 5 to 60 carbon atoms, in which an H atom may be replaced by D, F, Cl, Br, I; a The composition of any one of the embodiments 1-6, wherein the rings may together form a mono- or polycyclic, aliphatic, aromatic, or heteroaromatic ring system.

[0129] 8. The composition of any one of aspects 1-7, further comprising a (meth)acrylate monomer represented by the following formula (I) and / or a (meth)acrylate monomer represented by the following formula (III): [ka] During the ceremony X 1 is an unsubstituted or substituted alkyl group, aryl group, or an alkoxy group or an ester group; X 2 is an unsubstituted or substituted alkyl group, aryl group, or an alkoxy group or an ester group; R 1 is a hydrogen atom, a halogen atom Cl, Br, or F, a methyl group, an alkyl group, an aryl group, an alkoxy group, an ester group, or a carboxylic acid group; R 2 is a hydrogen atom, a halogen atom Cl, Br, or F, a methyl group, an alkyl group, an aryl group, an alkoxy group, an ester group, or a carboxylic acid group; Preferably, the symbol X 1 teeth, [ka] where the "*" on the left side of the formula represents the terminal group C=CR of formula (I). 1and the "*" on the right represents the attachment point to the carbon atom of the symbol X in formula (I). 2 represents a connection point to; n is 0 or 1; Preferably, the symbol X 2 teeth, [ka] where the "*" on the left side of the formula represents the symbol X in formula (I). 1 and the "*" on the right represents the terminal group C=CR of formula (I). 2 represents a connection point to; m is 0 or 1; Preferably, at least m or n is 1; R 3 is a linear alkylene chain or alkoxylene chain having 1 to 25 carbon atoms, a cycloalkane having 3 to 25 carbon atoms, or an aryl group having 3 to 25 carbon atoms, preferably R 3 is a linear alkylene or alkoxylene chain having 1 to 15 carbon atoms, more preferably 1 to 5 carbon atoms, These are one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a )2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; R 4is a linear alkylene chain or alkoxylene chain having 1 to 25 carbon atoms, a cycloalkane having 3 to 25 carbon atoms, or an aryl group having 3 to 25 carbon atoms, preferably R 4 is a linear alkylene or alkoxylene chain having 1 to 15 carbon atoms, more preferably 1 to 5 carbon atoms, These are one or more radicals R a where one or more non-adjacent CH groups are replaced by R a C=CR a , C≡C, Si(R a )2, Ge(R a )2, Sn(R a )2, C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2; R a is, identically or differently at each occurrence, H, D, or an alkyl group having 1 to 20 carbon atoms, a cyclic alkyl or alkoxy group having 3 to 40 carbon atoms, an aromatic ring system having 5 to 60 carbon ring atoms, or a heteroaromatic ring system having 5 to 60 carbon atoms, in which an H atom may be replaced by D, F, Cl, Br, I; a may also here together form a mono- or polycyclic, aliphatic, aromatic or heteroaromatic ring system; [ka] R in the formula 9 is a hydrogen atom, a linear alkyl group having 1 to 25 carbon atoms, or a group represented by the chemical formula (IV) [ka] is a (meth)acrylic group represented by: R 10 is a hydrogen atom, a linear alkyl group having 1 to 25 carbon atoms, or a group represented by the chemical formula (V) [ka] is a (meth)acrylic group represented by: R 11 is a hydrogen atom, a linear alkyl group having 1 to 25 carbon atoms, or a group represented by the chemical formula (VI) [ka] is a (meth)acrylic group represented by: R in the formula 8a , R 8b , and R 8c are, each independently or dependently of each other at each occurrence, H or CH3; Here, R 9 , R 10 , and R 11 At least one of R is a (meth)acrylic group, preferably R 9 , R 10 , and R 11 is a (meth)acrylic group, and the other is a hydrogen atom or a linear alkyl group having 1 to 25 carbon atoms. Preferably, the electrical conductivity (S / cm) of the (meth)acrylate monomer represented by formula (III) is 1.0*10 -10 Less than or equal to 5.0*10 -11 Less than or equal to 5.0*10 is more preferable -11 From 1.0*10 -15 and even more preferably in the range of 5.0*10 -12 From 1.0*10 -15 It is in the range of up to.

[0130] 9. The composition of any one of embodiments 1-8, wherein the (meth)acrylate monomer represented by formula (II) is in the composition, and the mixing ratio of the (meth)acrylate monomer represented by formula (I) to the (meth)acrylate monomer represented by formula (II) is in the range of 1:99 to 99:1 (formula (I):formula (II)), preferably 5:95 to 50:50, more preferably 10:90 to 40:60, and even more preferably it is 15:85 to 35:65, and preferably, at least purified (meth)acrylate monomer represented by formula (I), (II) is used in the composition, more preferably both the (meth)acrylate monomer represented by formula (I) and the (meth)acrylate monomer represented by formula (II) are obtained or obtainable by a purification method.

[0131] 10. The composition of any one of embodiments 1-9, wherein the boiling point (BP) of the (meth)acrylate monomers of formula (I) and / or formula (II) is equal to or greater than 250°C, preferably, the boiling point (BP) of both (meth)acrylate monomers of formula (I) and formula (II) is equal to or greater than 250°C, more preferably, it is in the range of from 250°C to 350°C, still more preferably, from 280°C to 350°C, and even more preferably, it is in the range of from 300°C to 348°C.

[0132] 11. The composition of any one of aspects 1-10, wherein the light emitting moiety is an organic light emitting material and / or an inorganic light emitting material, preferably it is an inorganic light emitting moiety, more preferably it is an inorganic light emitting moiety that is an inorganic phosphor or quantum dot material, preferably the light emitting moiety contains a ligand attached onto the outermost surface of the light emitting moiety.

[0133] 12. The composition of any one of aspects 1-11, wherein the total amount of light-emitting moieties is in the range of 0.1 wt.% to 90 wt.%, preferably 10 wt.% to 70 wt.%, and more preferably 15 wt.% to 50 wt.%, based on the total amount of the composition.

[0134] 13. The composition of any one of claims 1 to 12, wherein the viscosity of the composition is less than 35 cP, preferably in the range of from 1 to 35 cP, more preferably from 2 to 30 cP, and even more preferably from 2 to 25 cP at room temperature.

[0135] 14. The composition of any one of embodiments 1 to 13, iii) another light-emitting moiety different from the light-emitting moiety described in embodiment 1 (preferably, the light-emitting moiety comprises a ligand, more preferably, the light-emitting moiety comprises an alkyl-type ligand having 2 to 25 carbon atoms); iv) another (meth)acrylate monomer; v) scattering particles, and vi) optically transparent polymers, antioxidants, radical quenchers, photoinitiators, and / or surfactants. The composition further comprises another material selected from one or more members of the group consisting of:

[0136] 15. The composition of any one of embodiments 1 to 14, v) scattering particles; and vii) at least one polymer, the polymer being configured to allow scattering particles to be dispersed in the composition; wherein the polymer comprises at least a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, a phosphonic acid, or a combination thereof, preferably the polymer comprises a tertiary amine, a phosphine oxide group, a phosphonic acid, or a phosphate group.

[0137] 16. The composition of any one of aspects 1-15, wherein the composition is configured to exhibit an EQE value greater than or equal to 23%, preferably greater than or equal to 24% and less than 95%, preferably less than 50%.

[0138] 17. The composition comprises 10 wt% or less, more preferably 5 wt% or less of a solvent based on the total weight of the composition, more preferably the composition is a solvent-free composition, and preferably the composition does not comprise any one of the following solvents selected from one or more members of the group consisting of: ethylene glycol monoalkyl ethers, such as ethylene glycol monomethyl ether, ethylene glycol monoethyl ether, ethylene glycol monopropyl ether, and ethylene glycol monobutyl ether; diethylene glycol dialkyl ethers, such as diethylene glycol dimethyl ether, diethylene glycol diethyl ether, diethylene glycol dipropyl ether, and diethylene glycol dibutyl ether; propylene glycol monomethyl ether (PGME), propylene glycol monoethyl ether, and propylene glycol monopropyl ether, and the like. propylene glycol alkyl ether acetates, such as methyl cellosolve acetate and ethyl cellosolve acetate; propylene glycol alkyl ether acetates, such as propylene glycol monomethyl ether acetate (PGMEA), propylene glycol monoethyl ether acetate, and propylene glycol monopropyl ether acetate; ketones, such as methyl ethyl ketone, acetone, methyl amyl ketone, methyl isobutyl ketone, and cyclohexanone; alcohols, such as ethanol, propanol, butanol, hexanol, cyclohexanol, ethylene glycol, triethylene glycol, and glycerin; esters, such as ethyl 3-ethoxypropionate, methyl 3-methoxypropionate, and ethyl lactate; and cyclic esters, such as gamma-butyro-lactone;17. The composition of any one of aspects 1-16, wherein the solvent is a chlorinated hydrocarbon such as chloroform, dichloromethane, chlorobenzene, trimethylbenzene, e.g., 1,3,5-trimethylbenzene, 1,2,4-trimethylbenzene, 1,2,3-trimethylbenzene, dodecylbenzene, cyclohexylbenzene, 1,2,3,4-tetramethylbenzene, 1,2,3,5-tetramethylbenzene, 3-isopropylbiphenyl, 3-methylbiphenyl, 4-methylbiphenyl, and dichlorobenzene, preferably, propylene glycol alkyl ether acetate, alkyl acetate, ethylene glycol monoalkyl ether, propylene glycol, and propylene glycol monoalkyl ether;

[0139] 18. The composition of any one of the preceding aspects, comprising at least a (meth)acrylate monomer of formula (I), a (meth)acrylate monomer of formula (II), and a polymer, the polymer being configured to enable scattering particles to be dispersed in the composition, wherein the mixing ratio of the (meth)acrylate monomer of formula (I):(meth)acrylate monomer of formula (II):polymer is in the range of 10:89:1 to 50:40:10, preferably 15:82:3 to 30:60:10.

[0140] 19. A composition comprising a polymer derived or derivable from one or more of the reactive monomers of the composition of any one of embodiments 1 to 18, preferably which is obtained or obtainable by curing the composition.

[0141] 20. At least; I) a (meth)acrylate monomer (preferably, which is obtained or obtainable from a reactive monomer in the composition of any one of embodiments 1-19); II) a light-emitting portion; and III) unsaturated linear alkyl groups having 1 to 45 carbon atoms; unsaturated or saturated linear alkyl groups having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; unsaturated or saturated branched alkyl groups having 3 to 45 carbon atoms; linear alkenyl groups having 2 to 45 carbon atoms; branched alkenyl groups having 3 to 45 carbon atoms; unsaturated or saturated branched alkyl groups having 1 to 45 carbon atoms. or saturated linear or branched alkoxyl groups; unsaturated or saturated linear aryl-alkyl groups having 4 to 45 carbon atoms; chemical compounds containing at least one group selected from unsaturated or saturated branched aryl-alkyl groups having 6 to 45 carbon atoms, linear aryl-alkenyl groups having 5 to 45 carbon atoms, branched aryl-alkenyl groups having 6 to 45 carbon atoms, unsaturated or saturated linear aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated branched aryl-alkoxyl groups having 5 to 45 carbon atoms, unsaturated or saturated cyclo-alkyl groups having 4 to 45 carbon atoms, cyclo-alkenyl groups having 4 to 45 carbon atoms, unsaturated or saturated cyclo-alkoxyl groups having 4 to 45 carbon atoms; Preferably, the group is selected from an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, a linear alkenyl group having 2 to 45 carbon atoms, a branched alkenyl group having 3 to 45 carbon atoms, an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, wherein one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; More preferably, it is selected from an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms or an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms, an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, preferably 8 to 70 carbon atoms, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the carbon atoms of the alkyl, alkenyl and / or alkoxy groups range from 10 to 35, more preferably from 14 to 30; Even more preferably, it is an unsaturated or saturated linear alkyl group having 1 to 80, preferably 8 to 70, more preferably 12 to 60 carbon atoms, in which one or more non-adjacent CH2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH2, SO, SO2, OS, or CONH, and in which one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO2, preferably one or more non-adjacent CH2 groups are replaced by an oxygen atom; Preferably, the chain contains from 1 to 5 carbon-carbon double bonds, more preferably from 1 to 3 carbon-carbon double bonds, even more preferably 2 carbon-carbon double bonds; wherein the chemical compound is not a polymer, A layer containing

[0142] 21. A color conversion device (100) comprising at least a first pixel (161) partially or completely filled with a layer of claim 20 comprising at least a matrix material (120) containing a light-emitting portion (110), and a bank (150) comprising at least a polymer material, preferably the color conversion device (100) further comprising a support medium (170).

[0143] 22. An optical device (300) containing at least one functional medium (320, 420, 520) configured to modulate light or configured to emit light, and the color conversion device (100) of embodiment 21.

[0144] Technical Effects of the Invention improved uniform dispersion of the luminescent moieties in the composition, improved uniform dispersion of the scattering particles in the composition, preferably improved uniform dispersion of both the luminescent and scattering particles, more preferably improved uniform dispersion of the luminescent moieties and / or scattering particles without solvent; compositions having lower viscosity suitable for inkjet printing, the viscosity of the composition does not increase over time, preferably compositions which can maintain a lower viscosity even when mixed with high loads of luminescent moieties and / or scattering particles, still more preferably without solvent; compositions having lower vapor pressure for uniform printing over large areas; new compositions which achieve no residue around the inkjet printing nozzle during / after inkjet printing, improved QY and / or EQE of the luminescent moieties in the composition, improved QY and / or EQE of the luminescent moieties after printing; improved thermal stability; ease of printing without clogging at the printing nozzle; easy handling of the composition, improved printing properties; simple fabrication process; improved absorbance of blue light; improved solidity of layers made from the composition after inkjet printing.

[0145] Examples 1-13 below provide a description of the invention as well as detailed descriptions of their preparation.

[0146] Working Example mPEG350-SH: Poly(ethylene glycol) methyl ether thiol, average Mn 350 mPEG800-SH: Poly(ethylene glycol) methyl ether thiol, average Mn 800 LA: Lauryl acrylate HDDA: 1,6-Hexanediol diacrylate

[0147] Example 1: Preparation of the matrix Add 2.368 g of LA and 0.592 g of HDDA to 0.04 g of Irganox™ 819. Shake the mixture until the Irganox™ 819 is completely dissolved.

[0148] Comparative Example 1: Preparation of red QD ink 0.75 g of matrix obtained in Example 1, 0.25 g of InP-based red QDs (core-double shell) with dodecyl groups as ligands dispersed in heptane are mixed in a glass flask and the volatiles are evaporated under vacuum on a rotary evaporator at 30° C. The remaining volatiles are removed on a Schlenk line under a vacuum of 60 mTorr.

[0149] Example 2: Preparation of red QD ink with mPEG350-SH 0.05 g of mPEG350-SH is dissolved in 1 mL of toluene, 0.25 g of InP-based red QDs with dodecyl groups as ligands dispersed in heptane are added, and the mixture is stirred for 1.5 hr. Then 0.7 g of the matrix obtained in Example 1 is added, and the volatiles are evaporated on a rotary evaporator under vacuum at 30° C. The remaining volatiles are removed on a Schlenk line under a vacuum of 60 mTorr.

[0150] Example 3: Preparation of red QD ink with mPEG800-SH Red QD ink with mPEG800-SH is prepared in the same manner as described in Example 2 above, except that mPEG800-SH is used instead of mPEG350-SH.

[0151] Example 4: Ligand exchange on red QDs with linoleic acid (linoleic acid / QD 無機 Weight ratio=0.2) 4.88 g of InP-based red QDs with dodecyl groups as ligands dispersed in heptane are placed in a glass flask, 5.33 g of anhydrous THF are added, 0.2 g of linoleic acid is added, the mixture is flushed with Ar and refluxed under Ar for 2 h. After the solution is cooled, the red QDs are precipitated by adding 60 ml of dry iso-propanol. The cloudy solution is then centrifuged at 2950 G for 5 min and the supernatant is discarded. 3.82 g of dry n-heptane is then added to prepare a stock solution of 188 mg / mL QD concentration in n-heptane.

[0152] Example 5: Ligand exchange on red QDs with elaidic acid (elaidic acid / QD 無機 Weight ratio=1.4) Red QDs with elaidic acid are prepared in the same manner as described in Example 4 above, except that 1.4 g of elaidic acid is used.

[0153] Example 6: Ligand exchange on red QDs with isostearic acid (isostearic acid / QD 無機 Weight ratio=1.4) A red QD ink with isostearic acid is prepared in the same manner as described in Example 4 above, except that 1.4 g of isostearic acid is used.

[0154] Example 7: Ligand exchange on red QDs with mPEG350-SH (mPEG350-SH / QD 無機 Weight ratio=0.05~0.4) 9.76 g of InP-based red QDs with dodecyl groups as ligands dispersed in heptane are placed in a glass flask, 10 ml of anhydrous THF are added, the mixture is flushed with Ar and refluxed under Ar for 1 h. A solution of 0.08 g of mPEG350-SH in 0.5 mL / 0.5 mL of THF / n-heptane is then added and the reaction mixture is refluxed under Ar for 1 h. After cooling, 4 ml of the reaction mixture is removed and purified separately. To the remaining reaction mixture of 0.1 g of mPEG350-SH in 0.5 mL / 0.5 mL of THF / n-heptane is added and the reaction mixture is left under Ar for 1 h. After cooling, 4 ml of the reaction mixture is removed and purified separately. To the remaining reaction mixture of 0.1 g of mPEG350-SH in 0.5 mL / 0.5 mL of THF / n-heptane is added and the reaction mixture is left under Ar for 1 h. After cooling, 4 ml of the reaction mixture is removed and purified separately. 0.1 g of mPEG350-SH in 0.5 mL / 0.5 mL of THF / n-heptane was added to the remaining reaction mixture, and the reaction mixture was placed under Ar for 1 h. After the solution was cooled, the red QDs were precipitated by adding 14 ml of dry n-heptane. The cloudy solution was then centrifuged at 2950 G for 5 min, and the supernatant was discarded. Dry toluene was then added to prepare a stock solution of 306 mg / mL QD concentration in toluene.

[0155] Example 8: Preparation of red QD ink with QDs bearing linoleic acid as ligand obtained in Example 4 0.75 g of matrix obtained in Example 1 and 0.25 g of InP-based red QDs dispersed in n-heptane obtained in Example 4 are mixed in a glass flask and volatiles are evaporated on a rotary evaporator under vacuum at 30° C. Residual volatiles are removed on a Schlenk line under a vacuum of 60 mTorr.

[0156] Example 9: Preparation of red QD ink with QDs bearing mPEG350-SH as ligand obtained in Example 7 Same as Example 8, but using the InP-based red QDs dispersed in toluene obtained in Example 7.

[0157] Example 10: Preparation of red QD ink with QDs bearing elaidic acid as ligand obtained in Example 5 Same as in Example 8, but using the suspension of InP-based red QDs dispersed in n-heptane obtained in Example 5.

[0158] Example 11: Preparation of red QD ink with QDs having isostearic acid as the ligand obtained in Example 6 Same as in Example 8, but using the suspension of InP-based red QDs dispersed in n-heptane obtained in Example 6.

[0159] Example 12 : Dispersibility Test The red QD inks obtained in Examples 2, 3, 8, 9, 10, 11, and 13 and the red QD ink obtained in Comparative Example 1 are stored at room temperature under atmospheric conditions. The red QD inks of Examples 2, 3, 8, 9, 10, 11, and 13 (especially the red QD inks of Examples 2, 3, 8, 9, and 13) show superior dispersibility compared to Comparative Example 1, which does not have any added ligand.

[0160] Example 12 : Nozzle plate wetting test The nozzle plate wetting test is carried out as described below. The QD inks obtained in Examples 2, 3, 8, 9, 10, and 11 and the QD inks obtained in the Comparative Example were each individually dropped onto each nozzle plate of the print head (Dimatix DMP-2831 material printer, Fuji film), and then the dropped ink was removed by absorbing it into a cleaning pad. The cleanliness of the surface on each nozzle plate was visually observed.

[0161] Example 13: Preparation of red QD ink with linoleic acid 0.05 g of linoleic acid is dissolved in 1 ml of toluene, 0.25 g of InP-based red QDs with dodecyl groups as ligands dispersed in heptane are added, and the mixture is stirred for 1 hr at 40° C. Then 0.7 g of the matrix obtained in Example 1 is added, and the volatiles are evaporated on a rotary evaporator under vacuum at 30° C. The remaining volatiles are removed on a Schlenk line under a vacuum of 60 mTorr.

[0162] result The QD inks 2, 3, and 9 are well repelled on the nozzle plate. The surface of the nozzle plate on which the QD inks 2, 3, and 9 are dropped is very clean after cleaning with the pad. This indicates that during inkjet printing, the ink composition of the present invention, particularly the QD inks 2, 3, and 9, can be smoothly ink-jetted onto a substrate without causing clogging, without remaining around the nozzle of the inkjet machine, and without remaining on or around the nozzle surface.

[0163] Table 1 shows the results of the dispersibility test of Example 12 and the nozzle plate wetting test of Example 13. [Table 1]

Claims

1. At least; i) a reactive monomer; ii) a light-emitting part; and iii) An unsaturated straight-chain alkyl group having 1 to 45 carbon atoms; an unsaturated or saturated straight-chain alkyl group having 1 to 80 carbon atoms, wherein one or more non-adjacent CH 2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH 2 , SO, SO 2 , OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO 2 ; an unsaturated or saturated branched-chain alkyl group having 3 to 45 carbon atoms; a straight-chain alkenyl group having 2 to 45 carbon atoms; a branched-chain alkenyl group having 3 to 45 carbon atoms; an unsaturated or saturated straight-chain or branched-chain alkoxyl group having 1 to 45 carbon atoms; an unsaturated or saturated straight-chain aryl-alkyl group having 4 to 45 carbon atoms; an unsaturated or saturated branched-chain aryl-alkyl group having 6 to 45 carbon atoms, a straight-chain aryl-alkenyl group having 5 to 45 carbon atoms, a branched-chain aryl-alkenyl group having 6 to 45 carbon atoms, an unsaturated or saturated straight-chain aryl-alkoxyl group having 5 to 45 carbon atoms, an unsaturated or saturated branched-chain aryl-alkoxyl group having 5 to 45 carbon atoms, an unsaturated or saturated cyclo-alkyl group having 4 to 45 carbon atoms, a cyclo-alkenyl group having 4 to 45 carbon atoms, an unsaturated or saturated cyclo-alkoxyl group having 4 to 45 carbon atoms, a chemical compound containing at least one group selected from the above A composition comprising; Wherein the chemical compound is not a polymer, said composition.

2. The composition according to claim 1, wherein the chemical compound further comprises at least one group selected from the group consisting of a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, and a phosphonic acid.

3. A chemical compound has the following chemical formula (X A ) Z(-X)u-Y -(X A ) Represented by, wherein Z is, *-R x1 or 【Chemical 1】 However, here, “*” represents the connection point to the symbol Y of the formula, R x1 is a group selected from one or more members of the group consisting of a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, and a phosphonic acid; and R x2 is a group selected from one or more members of the group consisting of a phosphine group, a phosphine oxide group, a phosphate group, a phosphonate group, a thiol group, a tertiary amine, a carboxyl group, a heterocyclic group, a silane group, a sulfonic acid, a hydroxyl group, and a phosphonic acid; X is a single bond, an alkylene group having 1 to 15 carbon atoms, an alkenylene group having 1 to 15 carbon atoms, or a (poly) alkoxylene group having 1 to 15 carbon atoms; u is 0 or 1; Y is selected from an unsaturated linear alkyl group having 1 to 45 carbon atoms, an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms, and / or an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms; The alkyl group, alkenyl group, and / or alkoxy group may optionally be substituted by one or more radicals R a and one or more non-adjacent CH 2 groups may be replaced by R a C=CR a , C≡C, Si(R a ) 2 , Ge(R a ) 2 , Sn(R a ) 2 , C=O, C=S, C=Se, C=NR a , P(=O)(R a ), SO, SO2, NR a , OS, or CONR a and one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO 2 , R a is, for each occurrence, the same or different and is H, D, an alkyl group having 1 to 20 carbon atoms, a cyclic alkyl or alkoxy group having 3 to 40 carbon atoms, an aromatic ring system having 5 to 60 carbocyclic atoms, or a heteroaromatic ring system having 5 to 60 carbon atoms, where the H atom may be replaced by D, F, Cl, Br, I; two or more adjacent substituents R a may also here form, with each other, mono- or polycyclic, aliphatic, aromatic, or heteroaromatic ring systems; In the case where Y is an unsaturated or saturated straight-chain alkyl group having 1 to 80 carbon atoms, where one or more non-adjacent CH 2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH 2 , SO, SO 2 , OS, or CONH, and where one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO 2 , the composition according to claim 1.

4. The ratio of the total weight of the chemical compound to the total weight of the light-emitting part is in the range of 0.6:40 to 1:3; in the case where the light-emitting part is an inorganic light-emitting material, the ratio of the weight of the chemical compound to the inorganic part of the inorganic light-luminescent material is in the range of 0.003 to 3.

2. The composition according to claim 1.

5. The composition according to claim 1, wherein the light-emitting part contains at least one ligand.

6. The composition according to claim 1, wherein the reactive monomer is selected from a (meth) acrylate monomer, a mono-(meth) acrylate monomer, a di-(meth) acrylate monomer, or a tri-(meth) acrylate monomer.

7. The composition according to claim 1, further comprising a (meth) acrylate monomer represented by the following chemical formula (I) and / or a (meth) acrylate monomer represented by chemical formula (III); 【Chemical 2】 Wherein X 1 is an unsubstituted or substituted alkyl group, aryl group, or is an alkoxy group or ester group; X 2 is an unsubstituted or substituted alkyl group, aryl group, alkoxy group or ester group; R 1 is a hydrogen atom, a halogen atom of Cl, Br, or F, a methyl group, an alkyl group, an aryl group, an alkoxy group, an ester group, or a carboxylic acid group; R 2 is a hydrogen atom, a halogen atom of Cl, Br, or F, a methyl group, an alkyl group, an aryl group, an alkoxy group, an ester group, or a carboxylic acid group; [Chemical Formula 3] Wherein R 9 is a hydrogen atom, a linear alkyl group having 1 to 25 carbon atoms, or a chemical formula (IV) 【Chemical Formula 4】 Is a (meth) acrylic group represented by; R 10 is a hydrogen atom, a linear alkyl group having 1 to 25 carbon atoms, or Chemical Formula (V) 【Chemical Formula 5】 Is a (meth) acrylic group represented by; R 11 is a hydrogen atom, a linear alkyl group having 1 to 25 carbon atoms, or a chemical formula (VI) 【Chemical Formula 6】 Is a (meth) acrylic group represented by; wherein R 8a , R 8b , and R 8c are each independently or dependently on one another, for each occurrence, H or CH 3 ; Here, R 9 , R 10 , and R 11 At least one of which is a (meth)acrylic group, said composition.

8. The composition according to claim 1, wherein the boiling point (B.P.) of the (meth) acrylate monomer represented by chemical formula (I) and / or chemical formula (II) is 250°C or higher.

9. The composition according to claim 1, wherein the viscosity of the composition is 35 cP or less at room temperature.

10. The composition according to claim 1, comprising the following: iii) Another light-emitting part different from the light-emitting part according to claim 1; iv) Another (meth)acrylate monomer; v) Scattering particles, and vi) An optically transparent polymer, antioxidant, radical quencher, photoinitiator, and / or surfactant The composition comprising another material selected from one or more members of the group consisting of.

11. The composition according to claim 1, comprising v) Scattering particles; and vii) At least one polymer, wherein the polymer is configured to be able to disperse the scattering particles in the composition, the polymer comprising; wherein the polymer comprises at least a phosphine group, phosphine oxide group, phosphate group, phosphonate group, thiol group, tertiary amine, carboxyl group, heterocyclic group, silane group, sulfonic acid, hydroxyl group, phosphonic acid, or a combination thereof, the composition.

12. The composition according to claim 1, wherein the composition comprises 10 wt% or less of a solvent based on the total amount of the composition.

13. The composition comprising a polymer derived from or derivable from one or more of the reactive monomers of the composition according to claim 1.

14. At least; I) (Meth)acrylate polymer; II) Light-emitting part; and III) an unsaturated linear alkyl group having 1 to 45 carbon atoms; an unsaturated or saturated linear alkyl group having 1 to 80 carbon atoms, wherein one or more non-adjacent CH 2 groups are replaced by an oxygen atom, C=O, C=S, C=Se, C=NH, SiH 2 , SO, SO 2 , OS, or CONH, and wherein one or more H atoms may be replaced by D, F, Cl, Br, I, CN, or NO 2 ; an unsaturated or saturated branched alkyl group having 3 to 45 carbon atoms; a linear alkenyl group having 2 to 45 carbon atoms; a branched alkenyl group having 3 to 45 carbon atoms; an unsaturated or saturated linear or branched alkoxyl group having 1 to 45 carbon atoms; an unsaturated or saturated linear aryl-alkyl group having 4 to 45 carbon atoms; an unsaturated or saturated branched aryl-alkyl group having 6 to 45 carbon atoms, a linear aryl-alkenyl group having 5 to 45 carbon atoms, a branched aryl-alkenyl group having 6 to 45 carbon atoms, an unsaturated or saturated linear aryl-alkoxyl group having 5 to 45 carbon atoms, an unsaturated or saturated branched aryl-alkoxyl group having 5 to 45 carbon atoms, an unsaturated or saturated cyclo-alkyl group having 4 to 45 carbon atoms, a cyclo-alkenyl group having 4 to 45 carbon atoms, an unsaturated or saturated cyclo-alkoxyl group having 4 to 45 carbon atoms, a chemical compound containing at least one group selected from A layer containing; wherein the chemical compound is not a polymer, the layer.

15. A color conversion device (100) comprising at least a first pixel (161) partially or fully filled with a layer according to claim 14 comprising a matrix material (120) containing a light-emitting part (110), and a bank (150) containing at least a polymer material, preferably the color conversion device (100) further comprises a support medium (170), the color conversion device (100).

16. An optical device (300) containing at least one functional medium (320, 420, 520) configured to adjust light or configured to emit light, and the color conversion device (100) according to claim 15.