IP Library Granted Patent US 12,596,258
Granted Patent B2
US 12,596,258 · App. 18/461,046 · Granted Apr 7, 2026

Display device

Inventors: Shinichi Komura (Tokyo, JP); Kazutaka Nagaoka (Tokyo, JP)
Assignee: Magnolia White Corporation
G02B27/0172G02F1/0136G02F1/133528G02F1/133536G02F1/133638G02F1/13439G02F1/13471G02B2027/0174
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Quick Facts
Patent No.
US 12,596,258
App. No.
18/461,046
Granted
Apr 7, 2026
Kind
B2
Abstract

According to one embodiment, a display device includes an illumination device, a display panel opposed, a first retardation film, a holographic optical element, a second retardation film, a reflection polarizer spaced apart from the holographic optical element, and configured to transmit first linearly polarized light and reflect second linearly polarized light orthogonal to the first linearly polarized light, and a polarization conversion element located between the second retardation film and the reflection polarizer, and configured to maintain a polarization direction of the display light and rotate a polarization direction of external light transmitted through the light guide.

Claims (77)

1 . A display device comprising:

an illumination device comprising a light guide, and a light emitting element opposed to a side surface of the light guide;

a display panel opposed to a first main surface of the light guide and configured to emit display light of linearly polarized light;

a first retardation film opposed to the display panel;

a holographic optical element opposed to the first retardation film;

a second retardation film opposed to the holographic optical element;

a reflection polarizer spaced apart from the holographic optical element, and configured to transmit first linearly polarized light and reflect second linearly polarized light orthogonal to the first linearly polarized light; and

a polarization conversion element located between the second retardation film and the reflection polarizer, and configured to maintain a polarization direction of the display light and rotate a polarization direction of external light transmitted through the light guide.

2 . The display device of claim 1 , wherein

the polarization conversion element comprises

a third substrate opposed to the second retardation film and including a third transparent electrode,

a fourth substrate opposed to the reflection polarizer and including a fourth transparent electrode, and

a second liquid crystal layer located between the third substrate and the fourth substrate, and containing twist-aligned liquid crystal molecules.

3 . The display device of claim 1 , wherein

the display panel comprises

a first substrate,

a second substrate,

a first liquid crystal layer located between the first substrate and the second substrate,

a first transparent electrode disposed in each pixel,

a second transparent electrode disposed over a plurality of pixels,

a first polarizer located between the first substrate and the light guide, and

a second polarizer located between the second substrate and the first retardation film, and

the display panel is configured to transmit the external light in a state where an electric field is not formed in the first liquid crystal layer.

4 . The display device of claim 3 , further comprising a shutter element opposed to a second main surface opposite to the first main surface of the light guide, and configured to be able to switch between transmission and non-transmission of the external light.

5 . The display device of claim 4 , wherein

the shutter element comprises

a fifth substrate including a fifth transparent electrode,

a sixth substrate including a sixth transparent electrode,

a third liquid crystal layer located between the fifth substrate and the sixth substrate, and containing twist-aligned liquid crystal molecules,

a third polarizer opposed to the fifth substrate, and

a fourth polarizer located between the sixth substrate and the light guide, and

a transmission axis of the fourth polarizer is orthogonal to a transmission axis of the third polarizer and is parallel to a transmission axis of the first polarizer.

6 . The display device of claim 1 , wherein the first retardation film and the second retardation film are quarter-wave plates.

7 . The display device of claim 1 , wherein the light guide has substantially zero refractive anisotropy.

8 . A display device comprising:

an illumination device including a light guide, and a light emitting element opposed to a side surface of the light guide;

a display panel opposed to a first main surface of the light guide and configured to emit display light of linearly polarized light;

a first retardation film opposed to the display panel;

a half mirror opposed to the first retardation film;

a second retardation film opposed to the half mirror;

a reflection polarizer spaced apart from the half mirror, and configured to transmit first linearly polarized light and reflect second linearly polarized light orthogonal to the first linearly polarized light;

a polarization conversion element located between the second retardation film and the reflection polarizer, and configured to maintain a polarization direction of the display light and rotate a polarization direction of external light transmitted through the light guide;

a third retardation film opposed to the reflection polarizer; and

a lens element opposed to the third retardation film, configured to condense first circularly polarized light which is the display light transmitted through the third retardation film, and configured to transmit the first circularly polarized light which is the external light transmitted through the third retardation film without condensing the first circularly polarized light.

9 . The display device of claim 8 , wherein

the polarization conversion element comprises

a third substrate opposed to the second retardation film and including a third transparent electrode,

a fourth substrate opposed to the reflection polarizer and including a fourth transparent electrode, and

a second liquid crystal layer located between the third substrate and the fourth substrate, and containing twist-aligned liquid crystal molecules.

10 . The display device of claim 8 , wherein

the display panel comprises

a first substrate,

a second substrate,

a first liquid crystal layer located between the first substrate and the second substrate,

a first transparent electrode disposed in each pixel,

a second transparent electrode disposed over a plurality of pixels,

a first polarizer located between the first substrate and the light guide, and

a second polarizer located between the second substrate and the first retardation film, and

the display panel is configured to transmit the external light in a state where an electric field is not formed in the first liquid crystal layer.

11 . The display device of claim 10 , further comprising a shutter element opposed to a second main surface opposite to the first main surface of the light guide, and configured to be able to switch between transmission and non-transmission of the external light.

12 . The display device of claim 11 , wherein

the shutter element comprises

a fifth substrate including a fifth transparent electrode,

a sixth substrate including a sixth transparent electrode,

a third liquid crystal layer located between the fifth substrate and the sixth substrate, and containing twist-aligned liquid crystal molecules,

a third polarizer opposed to the fifth substrate, and

a fourth polarizer located between the sixth substrate and the light guide, and

a transmission axis of the fourth polarizer is orthogonal to a transmission axis of the third polarizer and is parallel to a transmission axis of the first polarizer.

13 . The display device of claim 8 , wherein the first retardation film, the second retardation film, and the third retardation film are quarter-wave plates.

14 . The display device of claim 8 , wherein the light guide has substantially zero refractive anisotropy.

15 . The display device of claim 8 , wherein

the lens element comprises

a seventh substrate opposed to the third retardation film and including a seventh transparent electrode,

an eighth substrate including an eighth transparent electrode, and

a fourth liquid crystal layer located between the seventh substrate and the eighth substrate, and containing liquid crystal molecules,

the fourth liquid crystal layer in a state where an electric field is not formed includes, in plan view, a first annular region where a plurality of first liquid crystal molecules are aligned in an identical direction and a second annular region where a plurality of second liquid crystal molecules are aligned in an identical direction outside the first annular region, and

the direction of alignment of the first liquid crystal molecules is different from the direction of alignment of the second liquid crystal molecules.

Assignments (2)
CHANGE OF NAME Recorded Aug 27, 2025
From: JAPAN DISPLAY INC.
To: MAGNOLIA WHITE CORPORATION
Reel/Frame 073057/0042 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 5, 2023
From: KOMURA, SHINICHI; NAGAOKA, KAZUTAKA
To: JAPAN DISPLAY INC.
Reel/Frame 064798/0337 →
Priority Claims (1)
JP 2022-140771 · Sep 5, 2022 · national
Continuity (1)
Related Publication 20240077731A1 · Mar 7, 2024
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