IP Library Patent Application 18304714
Patent Application
App. No. 18/304,714

ELECTROLUMINESCENT DEVICE, PRODUCTION METHOD THEREOF, AND DISPLAY DEVICE INCLUDING THE SAME

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Patent No.
US None
App. No.
18/304,714
Abstract

An electroluminescent device including a light emitting layer disposed between a first electrode and a second electrode, and an electron transport layer disposed between the multi-layered light emitting film and the second electrode, where the multi-layered light emitting film includes a first layer and a second layer disposed on the first layer, the first layer including a plurality of first semiconductor nanoparticles surrounded by a p-type organic semiconductor polymer, and the second layer including a plurality of second semiconductor nanoparticles

Claims (53)

1 . An electroluminescent device, comprising:

a first electrode;

a second electrode;

a multi-layered light emitting film disposed between the first electrode and the second electrode; and

an electron transport layer disposed between the multi-layered light emitting film and the second electrode,

wherein the multi-layered light emitting film is configured to emit a first light having a predetermined peak emission wavelength,

wherein the multi-layered light emitting film comprises a first layer and a second layer disposed on the first layer, the first layer comprising a plurality of first semiconductor nanoparticles surrounded by a p-type organic semiconductor polymer, and the second layer comprising a plurality of second semiconductor nanoparticles.

2 . The electroluminescent device of claim 1 , wherein

the predetermined peak emission wavelength is in a blue wavelength region, a green wavelength region, or a red wavelength region, and a full width at half maximum of an emission peak of the first light is greater than or equal to about nanometers and less than or equal to about 50 nanometers.

3 . The electroluminescent device of claim 1 , wherein

wherein the electron transport layer comprises a zinc oxide nanoparticle, and optionally, the zinc oxide nanoparticle comprises an alkali metal, an alkaline earth metal, Zr, W, Li, Ti, Y, Al, Ga, In, Sn, Co, V, or a combination thereof.

4 . The electroluminescent device of claim 1 , wherein

the zinc oxide nanoparticle has a particle size of greater than or equal to about 1 nanometer and less than or equal to about 10 nanometers.

5 . The electroluminescent device of claim 1 , wherein

the plurality of first semiconductor nanoparticles and the plurality of second semiconductor nanoparticles do not comprise cadmium, lead, or a combination thereof, and the plurality of the first semiconductor nanoparticles and the plurality of the second semiconductor nanoparticles comprise an indium phosphide, an indium zinc phosphide, a zinc chalcogenide, or a combination thereof.

6 . The electroluminescent device of claim 1 , wherein

the plurality of second semiconductor nanoparticles comprises an organic ligand coordinated on a surface of the plurality of second semiconductor nanoparticles, and optionally, a halogen bound to the surface, and

the organic ligand comprises RCOOH, RNH 2 , R 2 NH, R 3 N, RSH, RH 2 PO, R 2 HPO, R 3 PO, RH 2 P, R 2 HP, R 3 P, ROH, RCOOR′, RPO(OH) 2 , R 2 POOH, or a combination thereof, wherein R and R′ are each independently a substituted or unsubstituted C1 to C40 aliphatic hydrocarbon, or a substituted or unsubstituted C6 to C40 aromatic hydrocarbon, or a combination thereof.

7 . The electroluminescent device of claim 1 , wherein

a population density of the plurality of first semiconductor nanoparticles in the first layer is less than a population density of the plurality of second semiconductor nanoparticles in the second layer.

8 . The electroluminescent device of claim 1 , wherein

the second layer does not comprise a phenyl phosphoryl benzene compound, a diphenyl phosphinylphenyl triazine compound, or a combination thereof.

9 . The electroluminescent device of claim 1 , wherein the multi-layered light emitting film is configured to exhibit a residual thickness percentage of greater than or equal to about 10% and less than or equal to 100% with respect to a C5-18 aliphatic hydrocarbon solvent, the residual thickness percentage being defined by the following equation:

residual thickness percentage=[ B/A]× 100

A: initial thickness of the multi-layered light emitting film

B: a thickness of the multi-layered light emitting film after being in contact with a given solvent for greater than or equal to 5 and less than or equal to 60 seconds.

10 . The electroluminescent device of claim 1 , wherein the first layer is configured to exhibit a residual thickness percentage of greater than or equal to about 82% with respect to a C5-18 aliphatic hydrocarbon solvent, the residual thickness percentage being defined by the following equation:

residual thickness percentage=[ B/A]× 100

A: initial thickness of the first layer

B: a thickness of the first layer after being in contact with a given solvent for greater than or equal to 5 and less than or equal to 60 seconds.

11 . The electroluminescent device of claim 1 , wherein the p-type organic semiconductor polymer comprises a substituted or unsubstituted alkylene group, a substituted or unsubstituted phenylene group, a substituted or unsubstituted biphenylene group, —NR—, an ether group, or a combination thereof, wherein R is a substituted or unsubstituted C1-30 aliphatic hydrocarbon group, a substituted or unsubstituted C3-60 aromatic hydrocarbon group, a substituted or unsubstituted C3-30 heteroaromatic hydrocarbon group, a substituted or unsubstituted C3-30 alicyclic hydrocarbon group, a substituted or unsubstituted C3-30 heteroalicyclic hydrocarbon group, or a combination thereof, and

optionally the p-type organic semiconductor polymer has a molecular weight of greater than or equal to about 1000 g/mol and less than or equal to about 100,000 g/mol.

12 . The electroluminescent device of claim 1 , wherein the p-type organic semiconductor polymer has a LUMO energy level of less than 3 eV.

13 . The electroluminescent device of claim 1 , wherein

a thickness of the multi-layered light emitting film is greater than or equal to about 10 nanometers and less than or equal to about 100 nanometers; or a thickness of the first layer is greater than or equal to about 5 nanometers and less than or equal to about 60 nanometers, and a thickness of the second layer is greater than or equal to about 5 nanometers and less than or equal to about 60 nanometers.

14 . The electroluminescent device of claim 1 , wherein

the electroluminescent device is configured to exhibit a maximum external quantum efficiency of greater than or equal to about 10% and

the electroluminescent device is configured to exhibit a maximum luminance of 75,000 candela per square meter.

15 . The electroluminescent device of claim 1 , wherein

the electroluminescent device is configured to exhibit a T90 of greater than or equal to about 15 hours with an initial luminance of about 650 nit, or

the electroluminescent device is configured to exhibit a voltage increase of less than or equal to about 0.6 volts with a luminance of about 650 nit for about 80 hours.

16 . The electroluminescent device of claim 1 , wherein in the electroluminescent device,

the second layer is disposed between the first layer and the electron transport layer; or

the first layer is disposed between the second layer and the electron transport layer.

17 . A method of manufacturing the electroluminescent device of claim 1 , which comprises:

providing a first electrode, forming a multi-layered light emitting film on the first electrode, forming an electron transport layer on the multi-layered light emitting film, and providing a second electrode on the electron transport layer,

wherein the forming of the multilayer light emitting layer comprises:

forming a film comprising a first composition comprising an organic solvent, a precursor of a p-type organic semiconductor polymer, and first semiconductor nanoparticles, and thermally treating the film at a temperature of greater than or equal to about 110° C. and less than or equal to about 180° C. to form a first layer;

and forming a film of a second composition including an organic solvent and the second semiconductor nanoparticles and removing the organic solvent from the film to form a second layer.

18 . The method of claim 17 , wherein the formation of the first layer does not involves UV light irradiation.

19 . A display device comprising the electroluminescent device of claim 1 .

20 . The display device of claim 19 , wherein

the display device comprises a portable terminal device, a monitor, a notebook computer, a television, an electric sign board, a camera, or an electronic component.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2025
From: SAMSUNG ELECTRONICS CO., LTD.
To: SAMSUNG DISPLAY CO., LTD.
Reel/Frame 072805/0890 →