IP Library › Granted Patent US 12,613,494
Granted Patent B2
US 12,613,494 · App. 18/655,359 · Granted Apr 28, 2026

Holographic display system and electronic device

Inventors: Yang Zeng (Shanghai, CN); Yaodong Wu (Shanghai, CN)
Assignee: SHANGHAI TIANMA MICROELECTRONICS CO., LTD.
G03H1/02G03H1/2249G03H2001/0212G03H2001/0224G03H2001/0228G03H2001/2271G03H2223/20G03H2223/22
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Quick Facts
Patent No.
US 12,613,494
App. No.
18/655,359
Granted
Apr 28, 2026
Kind
B2
Abstract

A holographic display system and an electronic device are provided. The holographic display system includes: at least a first optical module, a second optical module and a third optical module arranged sequentially in a first direction towards which the backlight is to be emitted. The first optical module is configured to transmit light of a first polarization direction, the second optical module is configured to transmit light of a second polarization direction, and the third optical module is configured to transmit light of a third polarization direction. The first polarization direction and the second polarization direction are at an angle of β 1 , the second polarization direction and the third polarization direction are at an angle of β 2 , and the first polarization direction and the third polarization direction are at an angle of β 3 , β 3 is greater than at least one of β 1 and β 2 .

Claims (144)

1 . A holographic display system, comprising:

a backlight module configured to emit backlight;

a plurality of optical modules arranged at a side of the backlight module where the backlight is to be emitted, wherein the plurality of optical modules comprise at least a first optical module, a second optical module and a third optical module arranged sequentially in a first direction towards which the backlight is to be emitted, the first optical module is configured to transmit light of a first polarization direction, the second optical module is configured to transmit light of a second polarization direction, and the third optical module is configured to transmit light of a third polarization direction, the first polarization direction, the second polarization direction, and the third polarization direction are not parallel to each other, wherein the first polarization direction, the second polarization direction and the third polarization direction are all parallel to a reference plane, and the reference plane is perpendicular to the first direction; at least two of the first optical module, the second optical module and the third optical module are liquid crystal grating; and

optical rotators configured to shift the polarization direction, wherein the first optical module, a first one of the optical rotators, the second optical module, a second one of the optical rotators and the third optical module are arranged in sequence in the first direction, the first polarization direction and the second polarization direction are at an angle of β 1 , the second polarization direction and the third polarization direction are at an angle of β 2 , and the first polarization direction and the third polarization direction are at an angle of β 3 , wherein β 3 is greater than at least one of β 1 and β 2 .

2 . The holographic display system according to claim 1 , wherein

the first optical module is a spatial light modulator comprising a first polarizer, a liquid crystal light valve and a second polarizer arranged sequentially along the first direction; and

the second optical module and the third optical module each are the liquid crystal grating, wherein

the first polarization direction is parallel to an optical axis of the second polarizer; the second polarization direction is an alignment direction of a liquid crystal layer in the liquid crystal grating serving as the second optical module; and the third polarization direction is an alignment direction of a liquid crystal layer in the liquid crystal grating serving as the third optical module.

3 . The holographic display system according to claim 1 , wherein

(

β

3

-

β

1

)

⁢

(

β

3

-

β

2

)

>

0

.

4 . The holographic display system according to claim 3 , wherein

β

1

=

β

2

⁢

and

/

or

⁢

β

3

=

β

1

+

β

2

.

5 . The holographic display system according to claim 4 , wherein

β

3

=

90

⁢

°

.

6 . The holographic display system according to claim 1 , wherein

(

β

3

-

β

1

)

⁢

(

β

3

-

β

2

)

<

0

.

7 . The holographic display system according to claim 6 , wherein

β

2

=

β

1

+

β

3

;

or

β

1

=

β

3

+

β

2

.

8 . The holographic display system according to claim 1 , wherein

(

β

3

-

β

1

)

⁢

(

β

3

-

β

2

)

=

0

.

9 . The holographic display system according to claim 1 , wherein

the first optical module is a first liquid crystal grating, the second optical module is a second liquid crystal grating, and the third optical module is a third liquid crystal grating; and

the first polarization direction is an alignment direction of a liquid crystal layer in the first liquid crystal grating, the second polarization direction is an alignment direction of a liquid crystal layer in the second liquid crystal grating, and the third polarization direction is an alignment direction of a liquid crystal layer in the third liquid crystal grating.

10 . The holographic display system according to claim 9 , wherein

a spatial light modulator is arranged between the first liquid crystal grating and the backlight module, and configured to emit light of a polarization direction parallel to the first polarization direction.

11 . The holographic display system according to claim 9 , wherein

an optical rotator between the first liquid crystal grating and the second liquid crystal grating is a first optical rotator, and the optical rotator between the second liquid crystal grating and the third liquid crystal grating is a second optical rotator, wherein

an optical axis of the first optical rotator intersects with an optical axis of the second optical rotator and is at a preset angle to the optical axis of the second optical rotator, and the second polarization direction coincides with an angle bisector of the preset angle.

12 . The holographic display system according to claim 9 , comprising:

a plurality of liquid crystal grating modules, wherein the liquid crystal grating modules each comprise at least the first liquid crystal grating, the second liquid crystal grating and the third liquid crystal grating; and

a dimmer device at a side of at least one of the plurality of liquid crystal grating modules where light is incident and configured to change the polarization direction of the incident light for at least one of the plurality of liquid crystal grating modules to change a direction in which the incident light is to propagate and at least another of the plurality of liquid crystal grating modules to maintain the direction in which the incident light is to propagate.

13 . The holographic display system according to claim 9 , comprising: at least one liquid crystal grating module, wherein

the liquid crystal grating module comprises 1 st liquid crystal grating to an N-th liquid crystal grating arranged sequentially in the first direction, and N is a positive integer greater than or equal to 3; and

in the same liquid crystal grating module, the first liquid crystal grating is an (i−1)-th liquid crystal grating, the second liquid crystal grating is an i-th liquid crystal grating, and the third liquid crystal grating is an (i+1)-th liquid crystal grating, wherein i is an integer and 2≤i≤N−1.

14 . The holographic display system according to claim 9 , wherein

a vertical projection of the second polarization direction in the reference plane is at an angle of 45° to a vertical projection of the first polarization direction in the reference plane, and the vertical projection of the second polarization direction in the reference plane is at an angle of 45° to the vertical projection of the third polarization direction in the reference plane.

15 . The holographic display system according to claim 1 , wherein

an optical rotator is a half-wave plate.

16 . The holographic display system according to claim 1 , wherein

an optical rotator comprises a plurality of half-wave plates arranged sequentially in the first direction.

17 . The holographic display system according to claim 16 , wherein

the number of the half-wave plates is less than or equal to three in the same optical rotator.

18 . The holographic display system according to claim 1 , wherein

β 1 and β 2 each are less than 50°.

19 . The holographic display system according to claim 1 , wherein

the backlight comprises a red laser, a green laser and a blue laser emitted sequentially;

one of the optical rotators is configured to delay both a phase of an ordinary wave and a phase of an extraordinary wave in the green laser by half a wave.

20 . An electronic device, comprising: a holographic display system, wherein the holographic display system comprises:

a backlight module configured to emit backlight;

a plurality of optical modules arranged at a side of the backlight module where the backlight is to be emitted, wherein the plurality of optical modules comprise at least a first optical module, a second optical module and a third optical module arranged sequentially in a first direction towards which the backlight is to be emitted, the first optical module is configured to transmit light of a first polarization direction, the second optical module is configured to transmit light of a second polarization direction, and the third optical module is configured to transmit light of a third polarization direction, the first polarization direction, the second polarization direction, and the third polarization direction are not parallel to each other, wherein the first polarization direction, the second polarization direction and the third polarization direction are all parallel to a reference plane, and the reference plane is perpendicular to the first direction; and

optical rotators configured to shift the polarization direction, wherein the first optical module, a first one of the optical rotators, the second optical module, a second one of the optical rotators and the third optical module are arranged in sequence in the first direction, the first polarization direction and the second polarization direction are at an angle of β 1 , the second polarization direction and the third polarization direction are at an angle of β 2 , and the first polarization direction and the third polarization direction are at an angle of β 3 , wherein β 3 is greater than at least one of β 1 and β 2 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 6, 2024
From: ZENG, YANG; WU, YAODONG
To: SHANGHAI TIANMA MICROELECTRONICS CO., LTD.
Reel/Frame 067316/0534 →
Priority Claims (1)
CN 202311819374.1 · Dec 26, 2023 · national
Continuity (1)
Related Publication 20240288824A1 · Aug 29, 2024
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