IP Library Granted Patent US 12,575,451
Granted Patent B2
US 12,575,451 · App. 17/971,224 · Granted Mar 10, 2026

High-resolution ultra-thin LED display for AR and VR devices and manufacturing method thereof

Inventor: Young Rag Do (Seoul, KR)
Assignee: KOOKMIN UNIVERSITY INDUSTRY ACADEMY COOPERATION FOUNDATION
H01L25/0753H10H20/857H10H20/018H10H20/825
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Quick Facts
Patent No.
US 12,575,451
App. No.
17/971,224
Granted
Mar 10, 2026
Kind
B2
Abstract

The present invention relates to a high-resolution ultra-thin light-emitting diode (LED) display and a manufacturing method thereof and relates to a display having very high resolving power and optical properties by introducing ultra-thin LED elements, and a manufacturing method capable of manufacturing the same with a very low defect rate.

Claims (47)

1 . A high-resolution ultra-thin light-emitting diode (LED) display for augmented reality (AR) and virtual reality (VR) devices, comprising an ultra-thin LED electrode assembly which includes:

a plurality of lower electrodes formed on a substrate;

a plurality of pixel units formed on the lower electrodes;

an insulating layer formed on the substrate and the plurality of pixel units; and

a plurality of upper electrodes formed on the insulating layer,

wherein:

each of the plurality of pixel units includes subpixel units each including a plurality of ultra-thin LED elements,

each of the plurality of ultra-thin LED elements constituting the subpixel unit includes a first conductive semiconductor layer, a photoactive layer, and a second conductive semiconductor layer which are stacked,

the ultra-thin LED elements are erected and disposed in the subpixel unit such that the first conductive semiconductor layer of the ultra-thin LED element faces the lower electrode, and

the ultra-thin LED element further includes at least one film of:

a hole pushing film which surrounds an exposed side surface of the second conductive semiconductor layer or the exposed side surface of the second conductive semiconductor layer and an exposed side surface of at least a portion of the photoactive layer to move holes at a side of the exposed side surface toward a center, and

an electron pushing film which surrounds an exposed side surface of the first conductive semiconductor layer to move electrons at a side of the exposed side surface side toward a center.

2 . The high-resolution ultra-thin LED display of claim 1 , wherein:

the subpixel units includes three or more ultra-thin LED elements; and

the ultra-thin LED element includes at least one selected from among an ultra-thin blue LED element, an ultra-thin green LED element, and an ultra-thin red LED element.

3 . The high-resolution ultra-thin LED display of claim 1 , wherein:

each of the plurality of pixel units includes three or four subpixel units; and each of the three or four subpixel units includes 3 to 30 ultra-thin LED elements.

4 . The high-resolution ultra-thin LED display of claim 3 , wherein each of the three or four subpixel units has a circular shape, a rectangular shape, or a square shape.

5 . The high-resolution ultra-thin LED display of claim 3 , wherein:

each of the plurality of pixel units includes three subpixel units; and

the three subpixel units include a first subpixel unit including an ultra-thin blue LED element, a second subpixel unit including an ultra-thin green LED element, and a third subpixel unit including an ultra-thin red LED element.

6 . The high-resolution ultra-thin LED display of claim 3 , wherein all of the three or four subpixel units include an ultra-thin blue LED element.

7 . The high-resolution ultra-thin LED display of claim 6 , wherein at least one color conversion layer selected from a green color conversion layer and a red color conversion layer is further stacked on the upper electrode.

8 . The high-resolution ultra-thin LED display of claim 1 , wherein the ultra-thin LED element includes at least one selected from:

a dot or disc LED element which has a thickness of 2,000 nm or less in a stacking direction of layers, wherein the dot LED element has a ratio between the thickness and a length of a major axis in a cross section perpendicular to the stacking direction in a range of 1:0.5 to 1:1.5, and the disc LED element has a ratio between the thickness and a length of a major axis in a cross section perpendicular to the stacking direction in a range of 1:1.5 to 1:5.0; and

a micro-nanofin LED element which has a thickness of 100 nm to 2,000 nm in a stacking direction of layers and in which a length of a major axis in a cross section perpendicular to the stacking direction is in a range of 100 nm to 6,000 nm, and a ratio between the thickness and the length of the major axis is 1:3 or more.

9 . The high-resolution ultra-thin LED display of claim 8 , wherein:

the ultra-thin LED element further includes an arrangement guide layer, which is for erecting and arranging the ultra-thin LED element in a thickness direction thereof, at one side of the ultra-thin LED element in the thickness direction and one side or both sides of a region in the lower electrode in which the ultra-thin LED element is to be disposed; and

the arrangement guide layer is a magnetic layer, a charge layer, or a bonding layer.

10 . The high-resolution ultra-thin LED display of claim 8 , wherein, when the ultra-thin LED element is a micro-nanofin LED element, the micro-nanofin LED element includes a polarization inducing layer that is further stacked on the second conductive semiconductor layer.

11 . The high-resolution ultra-thin LED display of claim 10 , wherein, when the ultra-thin LED element is the micro-nanofin LED element, the first conductive semiconductor layer or the polarization inducing layer of the micro-nanofin LED element is disposed in contact with at least two adjacent lower electrodes.

12 . The high-resolution ultra-thin LED display of claim 1 , wherein:

the first conductive semiconductor layer of the ultra-thin LED element is an n-type III-nitride semiconductor layer; and

the ultra-thin LED element further includes an electron delay layer on an opposite surface opposite to one surface of the first conductive semiconductor layer adjacent to the photoactive layer such that the numbers of electrons and holes recombined in the photoactive layer are balanced.

13 . The high-resolution ultra-thin LED display of claim 12 , wherein:

the first conductive semiconductor layer is a doped n-type III-nitride semiconductor layer; and

the electron delay layer is a III-nitride semiconductor having a lower doping concentration than the first conductive semiconductor layer.

14 . The high-resolution ultra-thin LED display of claim 1 , wherein:

the second conductive semiconductor layer of the ultra-thin LED element is a p-type III-nitride semiconductor layer; and

the ultra-thin LED element further includes an electron delay layer on an opposite surface opposite to one surface of the second conductive semiconductor layer adjacent to the photoactive layer such that the numbers of electrons and holes recombined in the photoactive layer are balanced.

15 . The high-resolution ultra-thin LED display of claim 1 , wherein:

the first conductive semiconductor layer of the ultra-thin LED element is an n-type III-nitride semiconductor layer; and

the second conductive semiconductor layer is a p-type III-nitride semiconductor layer.

16 . The high-resolution ultra-thin LED display of claim 15 , wherein:

the ultrathin LED element includes both the hole pushing film and the electron pushing film; and

the electron pushing film is provided as an outermost film surrounding the side surfaces of the first conductive semiconductor layer, the photoactive layer, and the second conductive semiconductor layer.

17 . The high-resolution ultra-thin LED display of claim 1 , wherein the high-resolution ultra-thin LED display has a resolving power of 450 pixels per inch (PPI) to 3,000 PPI.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 21, 2022
From: DO, YOUNG RAG
To: KOOKMIN UNIVERSITY INDUSTRY ACADEMY COOPERATION FOUNDATION
Reel/Frame 061501/0125 →
Priority Claims (1)
KR 10-2021-0141625 · Oct 22, 2021 · national
Continuity (1)
Related Publication 20230130620A1 · Apr 27, 2023
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