IP Library Granted Patent US 10,923,636
Granted Patent B2
US 10,923,636 · App. 16/578,264 · Granted Feb 16, 2021

Wavelength converting particle, method for manufacturing wavelength converting particle, and light-emitting diode containing wavelength converting particle

Inventors: Tae-woo Lee (Pohang-si, KR); Younghoon Kim (Daejeon, KR); Himchan Cho (Daegu, KR)
H01L33/504C09K11/025C09K11/06G02F1/3551G02F1/3775H01L33/502H01L33/505C09K2211/188H01L33/507
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Quick Facts
Patent No.
US 10,923,636
App. No.
16/578,264
Granted
Feb 16, 2021
Kind
B2
Abstract

Provided are a wavelength converting particle, a method for manufacturing a wavelength converting particle, and a light-emitting diode containing a wavelength converting particle. The wavelength converting particle comprises a hybrid OIP nanocrystal that converts a wavelength of light generated by an excitation light source into a specified wavelength. Accordingly, it is possible to optically stabilize and improve color purity and light-emission performance without changes in a light-emitting wavelength range.

Claims (28)

1. A perovskite wavelength-converting layer, the layer comprising:

a wavelength-converting particle comprising one or more nanocrystals of a perovskite material having a nanocrystal size greater than 10 nm and smaller than 300 nm that is configured to absorb light having a first wavelength and to emit light having a second wavelength,

wherein the second wavelength of the light emitted from the perovskite material does not change substantially over the nanocrystal size thereof unlike a quantum dot that substantially changes a wavelength of light emitted therefrom over a nanocrystal size thereof; and

wherein the perovskite material has a crystal structure of A 2 BX 4 , ABX 4 , ABX 3 , or A n−1 B n X 3n+1 (n is an integer ranging from 2 to 6); and

wherein A is organic ammonium or organic cation, B is a metal, and X is a halogen; and

a plurality of ligands attached to the one or more nanocrystals and configured to make the one or more nanocrystals more dispersible than without such ligands in a medium;

a dispersion medium configured to disperse the wavelength-converting nanoparticle; and

wherein the wavelength-converting particle is dispersed in the dispersion medium.

2. The perovskite wavelength-converting layer of claim 1 , wherein the second wavelength of the light emitted from the perovskite material does not change substantially over the nanocrystal size thereof.

3. The perovskite wavelength-converting layer of claim 1 , wherein the dispersion medium is selected from a group consisting of at least one of a polymer, epoxy, and a silicone resin.

4. The perovskite wavelength-converting layer of claim 1 , wherein the dispersion medium is not changed in color by excitation light.

5. The perovskite wavelength-converting layer of claim 1 , wherein the dispersion medium comprises a transparent medium.

6. The perovskite wavelength-converting layer of claim 1 , wherein

A is ((CH 3 NH 3 ) n , ((C x H 2x+1 ) n NH 2 )(CH 3 NH 3 ) n , (RNH 3 ) 2 , (C n H 2n+1 NH 3 ) 2 , (CF 3 NH 3 ), (CF 3 NH 3 ) n , ((C x F 2x+1 ) n NH 2 )(CF 3 NH 3 ) n , ((C x F 2x+1 ) n NH 3 ) 2 , or (C n F 2n+1 NH 3 ) 2 , wherein “n” is an integer greater than or equal to land “x” is an integer greater than or equal to 1;

wherein B is a divalent transition metal, a rare earth metal, an alkaline earth metal, Pb, Sn, Ge, Ga, In, Al, Sb, Bi, Po, or a combination thereof;

“R” is an Alkyl; and

X is Cl, Br, I, or a combination thereof.

7. The perovskite wavelength-converting layer of claim 1 , wherein the wavelength-converting particle is uniformly dispersed in the dispersion medium.

8. A perovskite wavelength-converting body comprising:

a wavelength-converting particle comprising one or more nanocrystals of a perovskite material having a nanocrystal size greater than 10 nm and smaller than 300 nm that is configured to absorb light having a first wavelength and to emit light having a second wavelength,

wherein the second wavelength of the light emitted from the perovskite material does not change substantially over the nanocrystal size thereof unlike a quantum dot that substantially changes a wavelength of light emitted therefrom over a nanocrystal size thereof; and

wherein the perovskite material has a crystal structure of A 2 BX 4 , ABX 4 , ABX 3 , or A n−1 B n X 3n+1 (n is an integer ranging from 2 to 6); and

wherein A is organic ammonium or organic cation, B is a metal, and X is a halogen; and

a plurality of ligands attached to the one or more nanocrystals and configured to make the one or more nanocrystals more dispersible than without such ligands in a medium;

a dispersion medium configured to disperse the wavelength-converting nanoparticle; and

a sealing member that seals the wavelength-converting particle and the dispersion medium,

wherein the wavelength-converting particle is dispersed in the dispersion medium.

9. The perovskite wavelength-converting body of claim 8 , wherein the dispersion medium is in a liquid state.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 6, 2025
From: POSTECH ACADEMY-INDUSTRY FOUNDATION; SN DISPLAY CO., LTD.
To: SN DISPLAY CO., LTD.
Reel/Frame 071352/0564 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 16, 2020
From: POSTECH ACADEMY-INDUSTRY FOUNDATION
To: POSTECH ACADEMY-INDUSTRY FOUNDATION; LEE, TAE-WOO
Reel/Frame 053780/0468 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 16, 2020
From: POSTECH ACADEMY-INDUSTRY FOUNDATION; LEE, TAE-WOO
To: POSTECH ACADEMY-INDUSTRY FOUNDATION; SN DISPLAY CO., LTD.
Reel/Frame 053780/0557 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2019
From: LEE, TAE-WOO; KIM, YOUNGHOON; CHO, HIMCHAN
To: POSTECH ACADEMY-INDUSTRY FOUNDATION
Reel/Frame 050452/0940 →
Priority Claims (1)
KR 10-2014-0153967 · Nov 6, 2014 · national
Continuity (2)
Division 15524761
Related Publication 20200020834A1 · Jan 16, 2020