IP Library › Granted Patent US 12,748,308
Granted Patent B2
US 12,748,308 · App. 18/125,560 · Granted Sep 29, 2026

Liquid crystal for vision correction

Inventors: Kun Gao (Dublin, CA); Yi Zhang (Palo Alto, CA); John D. Le (Palo Alto, CA); Youngshik Yoon (Palo Alto, CA); Hongdong Li (Palo Alto, CA)
Assignee: Tencent America LLC
G02B27/0172G02F1/133526G02F1/133562G02B2027/0116
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Quick Facts
Patent No.
US 12,748,308
App. No.
18/125,560
Granted
Sep 29, 2026
Kind
B2
Abstract

Aspects of the disclosure provide an optical system, a head mounted display (HMD) system, and a method of tuning the optical system. The optical system can include one or more liquid crystal (LC) lenses that are refractive optical elements. The one or more liquid crystal lenses can have a first chromatic aberration. The optical system can include a Pancharatnam-Berry (PB) phase lens that is a diffractive optical element. The PB phase lens can have a second chromatic aberration that is complementary to the first chromatic aberration. A chromatic aberration of the optical system can be less than the first chromatic aberration. The HMD system can include a display device, the optical system, and a virtual reality (VR) viewing optical system.

Claims (82)

1 . An optical system, comprising:

an electrically tunable lens system including one or more liquid crystal (LC) lenses that are refractive optical elements, the one or more LC lenses having a first chromatic aberration,

a Pancharatnam-Berry (PB) phase lens that is a diffractive optical element, the PB phase lens having a second chromatic aberration that is complementary to the first chromatic aberration, and

a LC spatial light modulator (SLM) disposed between the electrically tunable lens system and the PB phase lens, wherein

a chromatic aberration of the optical system is less than the first chromatic aberration,

when a light beam from the electrically tunable lens system and incident on the LC SLM is linearly polarized, the LC SLM is configured to convert the linearly polarized light beam into a first circularly polarized light beam that is output from the LC SLM, and the PB phase lens is configured to convert the first circularly polarized light beam incident on the PB phase lens into a second circularly polarized light beam that is output from the PB phase lens, and

the first circularly polarized light beam and the second circularly polarized light beam are (i) left circularly polarized and right circularly polarized, respectively, or (ii) right circularly polarized and left circularly polarized, respectively.

2 . The optical system according to claim 1 , wherein

a first optical power of the one or more LC lenses is electrically tunable,

an optical power of the optical system is based at least on a sum of the first optical power of the one or more LC lenses and a second optical power of the PB phase lens, and

the first optical power, the second optical power, and the optical power of the optical system correspond to respective focal lengths of the one or more LC lenses, the PB phase lens, and the optical system.

3 . The optical system according to claim 2 , wherein

the one or more LC lenses include a plurality of LC lenses,

each of the plurality of LC lenses is electrically tunable, and

the first optical power is a sum of respective optical powers of the plurality of LC lenses.

4 . The optical system according to claim 3 , wherein a number of the plurality of LC lenses is 3.

5 . The optical system according to claim 2 , wherein

one of the one or more LC lenses includes a plurality of transparent ring electrodes disposed on a first substrate and a transparent electrode disposed on a second substrate, the first substrate and the second substrate being parallel to a plane, and

a refractive index of the one of the one or more LC lenses varies with a radial distance from a center of the plurality of transparent ring electrodes on the first substrate, the refractive index being controlled by respective voltages of the plurality of transparent ring electrodes, the refractive index and the first optical power being circularly symmetric in the plane.

6 . The optical system according to claim 2 , wherein

the PB phase lens includes a center grating and a plurality of ring gratings formed by a liquid crystal material over a substrate,

each of the plurality of ring gratings surrounds the center grating,

the PB phase lens is configured to generate an output light beam from an input light beam that is incident on the substrate perpendicularly, the input light beam being the first circularly polarized light beam, the output light beam being the second circularly polarized light beam,

a center diffracted portion of the output light beam has first diffraction angle θ1, the center diffracted portion corresponding to a center portion of the input light beam that is incident on the center grating, and

peripheral diffracted portions of the output light beam have diffraction angles varying from the first diffraction angle 01 to a second diffraction angle θ2 corresponding to an outermost ring grating in the plurality of ring gratings, the peripherical diffracted portions corresponding to peripheral portions of the input light beam that are incident on the plurality of ring gratings, respectively, the second diffraction angle θ2 being greater than the first diffraction angleθ1.

7 . The optical system according to claim 6 , wherein

the input light beam is left circularly polarized,

the output light beam is right circularly polarized, and

the PB phase lens functions as a converging lens with the second optical power being positive.

8 . The optical system according to claim 6 , wherein

the input light beam is right circularly polarized,

the output light beam is left circularly polarized, and

the PB phase lens functions as a diverging lens with the second optical power being negative.

9 . The optical system according to claim 6 , wherein

the optical system includes one or more cylindrical LC lenses configured to correct for astigmatism of an eye of a user using the optical system, and

for each of the one or more cylindrical LC lenses,

the respective cylindrical LC lens includes a plurality of transparent electrodes disposed on a first substrate and a transparent electrode disposed on a second substrate, the first substrate and the second substrate being parallel to an XZ plane including an X axis and a Z axis that are perpendicular to each other, the plurality of transparent electrodes being parallel, and

a refractive index that is electrically tunable varies along a respective first dimension in the XZ plane.

10 . The optical system according to claim 9 , wherein

the one or more cylindrical LC lenses include a first cylindrical LC lens, a second cylindrical LC lens, and a third cylindrical LC lens with the first dimensions forming 0, 45°, and 90° with the X axis, respectively.

11 . The optical system according to claim 9 , wherein

the LC SLM is configured to convert the linearly polarized light beam to the LC SLM into the first circularly polarized light beam from the LC SLM by varying a voltage input to the LC SLM, the LC SLM being electrically tunable.

12 . The optical system according to claim 11 , wherein

the one or more LC lenses include a stack of LC lenses that are electrically tunable,

the one or more cylindrical LC lenses include a stack of cylindrical LC lenses with the first dimensions forming different angles with the X axis, respectively, the stack of cylindrical LC lenses being electrically tunable, and

the electrically tunable lens system includes the stack of cylindrical LC lenses.

13 . The optical system according to claim 12 , wherein

an input light beam that is incident on the electrically tunable lens system is linearly polarized,

in response to the voltage of the LC SLM being a first voltage,

the LC SLM is configured to convert the linearly polarized light beam that is incident on the LC SLM to the left circularly polarized light beam from the LC SLM, and

the PB phase lens is configured to convert the left circularly polarized light beam to the PB phase lens into the right circularly polarized light beam from the PB phase lens, and

in response to the voltage of the LC SLM being a second voltage,

the LC SLM is configured to convert the linearly polarized light beam that is incident on the LC SLM into the right circularly polarized light beam from the LC SLM, and

the PB phase lens is configured to convert the right circularly polarized light beam that is incident on the PB phase lens into the left circularly polarized light beam from the PB phase lens.

14 . A head mounted display (HMD) system, comprising:

a display device, a pixel array in the display device being configured to generate light beams; and

an optical system including:

an electrically tunable lens system including one or more liquid crystal (LC) lenses that are refractive optical elements, the one or more LC lenses having a first chromatic aberration,

a Pancharatnam-Berry (PB) phase lens that is a diffractive optical element, the PB phase lens having a second chromatic aberration that is complementary to the first chromatic aberration, and

a LC spatial light modulator (SLM) disposed between the electrically tunable lens system and the PB phase lens, wherein

a chromatic aberration of the optical system is less than the first chromatic aberration,

when a light beam from the electrically tunable lens system and incident on the LC SLM is linearly polarized, the LC SLM is configured to convert the linearly polarized light beam into a first circularly polarized light beam that is output from the LC SLM, and the PB phase lens is configured to convert the first circularly polarized light beam on the PB phase lens into a second circularly polarized light beam that is output from the PB phase lens, and

the first circularly polarized light beam and the second circularly polarized light beam are (i) left circularly polarized and right circularly polarized, respectively, or (ii) right circularly polarized and left circularly polarized, respectively.

15 . The HMD system according to claim 14 , further comprising:

a virtual reality (VR) viewing optical system disposed between the display device and the optical system.

16 . The HMD system according to claim 15 , wherein

the one or more LC lenses include a stack of LC lenses that are electrically tunable, and

the optical system includes a stack of cylindrical LC lenses with first dimensions forming different angles with an X axis, respectively, the stack of cylindrical LC lenses being electrically tunable, the electrically tunable lens system including the stack of cylindrical LC lenses.

17 . The HMD system according to claim 14 , further comprising:

an augmented reality (AR) viewing optical system disposed between the display device and the optical system, the AR viewing optical system directing the light beams from the display device and light beams from a real object to the optical system.

18 . A method of tuning an optical system, comprising:

obtaining vision correction information for at least one of nearsightedness or farsightedness;

determining a respective optical power of each liquid crystal (LC) lens in a stack of LC lenses in an electrically tunable lens system and an optical power of a Pancharatnam-Berry (PB) phase lens based on the vision correction information;

determining respective voltages to be applied to the stack of LC lenses based on the respective optical powers of the LC lenses;

determining a polarization state of light incident on the PB phase lens based on the optical power of the PB phase lens;

applying the determined respective voltages to the stack of LC lenses and controlling the polarization state of light incident on the PB phase lens to correct for the at least one of the nearsightedness or the farsightedness, wherein

the optical system includes the electrically tunable lens system including the stack of LC lenses that has a first chromatic aberration, the PB phase lens that has a second chromatic aberration complementary to the first chromatic aberration, and a LC spatial light modulator (SLM) disposed between the electrically tunable lens system and the PB phase lens,

a chromatic aberration of the optical system is less than the first chromatic aberration,

when a light beam from the electrically tunable lens system and incident on the LC SLM is linearly polarized, the LC SLM is configured to convert the linearly polarized light beam into a first circularly polarized light beam that is output from the LC SLM, and the PB phase lens is configured to convert the first circularly polarized light beam on the PB phase lens into a second circularly polarized light beam that is output from the PB phase lens, the polarization state of light incident on the PB phase lens being the polarization state of the first circularly polarized light beam, and

the first circularly polarized light beam and the second circularly polarized light beam are (i) left circularly polarized and right circularly polarized, respectively, or (ii) right circularly polarized and left circularly polarized, respectively.

19 . The method of tuning the optical system according to claim 18 , further comprising:

adjusting at least one of the respective voltages applied to the stack of LC lenses incrementally.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 23, 2023
From: GAO, KUN; ZHANG, YI; LE, JOHN D.; YOON, YOUNGSHIK; LI, HONGDONG
To: TENCENT AMERICA LLC
Reel/Frame 063081/0187 →
Continuity (1)
Related Publication 20240319503A1 · Sep 26, 2024
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