IP Library Patent Application 17866463
Patent Application
App. No. 17/866,463

LIQUID CRYSTAL POLARIZATION HOLOGRAM ELEMENT FOR REDUCING RAINBOW EFFECTS

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Quick Facts
Patent No.
US None
App. No.
17/866,463
Abstract

A device includes a diffraction element and an optical filter stacked with the diffraction element. The optical filter is configured to forwardly deflect a light from a real-world environment incident onto the optical filter, at an incidence angle greater than or equal to a predetermined angle, toward the diffraction element. The diffraction element is configured to substantially transmit the light forwardly deflected by the optical filter.

Claims (33)

1 . A device, comprising:

a diffraction element; and

an optical filter stacked with the diffraction element and configured to:

forwardly deflect a light from a real-world environment incident onto the optical filter, at an incidence angle greater than or equal to a predetermined angle, toward the diffraction element,

wherein the diffraction element is configured to substantially transmit the light forwardly deflected by the optical filter.

2 . The device of claim 1 , wherein the light from the real-world environment incident onto the optical filter at the incidence angle greater than or equal to the predetermined angle is a first light having a first incidence angle, the optical filter is configured to:

transmit a second light from the real-world environment incident onto the optical filter at a second incidence angle less than the predetermined angle toward the diffraction element.

3 . The device of claim 2 , wherein the diffraction element is configured to substantially diffract the second light transmitted through the optical filter.

4 . The device of claim 1 , wherein the optical filter includes a transmissive polarization volume hologram (“PVH”) element.

5 . The device of claim 1 , wherein the diffraction element includes one of a transmissive PVH element and a reflective PVH element.

6 . A device, comprising:

a polarization hologram having a first surface and a second surface;

a retardation film having a third surface and a fourth surface; and

a substrate disposed between the polarization hologram and the retardation film,

wherein the polarization hologram is configured to refract a first light incident onto the first surface toward the substate and the retardation film, the first light propagating through the substate into the retardation film from the third surface,

wherein the retardation film is configured to reflect the first light at the fourth surface as a second light propagating toward the third surface, and convert the second light into a third light having a predetermined polarization while transmitting the second light, the third light propagating through the substrate into the polarization hologram from the second surface, and

wherein the polarization hologram is configured to transmit the third light out of the polarization hologram from the first surface.

7 . The device of claim 6 , wherein the polarization hologram is configured to substantially diffract a circularly polarized light having a first handedness, and substantially transmit a circularly polarized light having a second handedness opposite to the first handedness, and the third light having the predetermined polarization is a circularly polarized light having the second handedness.

8 . The device of claim 6 , wherein the second light is a substantially s-polarized light.

9 . The device of claim 6 , wherein an incidence angle of the first light at the fourth surface of the retardation film is within a range of 25° to 40°.

10 . The device of claim 6 , wherein the retardation film includes at least one of an A-film, an O-film, or a biaxial film.

11 . An optical element, comprising:

a birefringent medium layer having an optic axis configured with respective spatially varying orientations in both of an in-plane direction and an out-of-plane direction,

wherein the birefringent medium layer includes optically anisotropic molecules, orientations of directors of the optically anisotropic molecules spatially varying in the out-of-plane direction, and

wherein a vertical pitch of the birefringent medium layer varies in the out-of-plane direction, the vertical pitch being a distance along the out-of-plane direction over which the orientations of the directors of the optically anisotropic molecules vary by a predetermined angle.

12 . The optical element of claim 11 , wherein the out-of-plane direction is a thickness direction of the birefringent medium layer.

13 . The optical element of claim 11 , wherein the predetermined angle is 180 degrees.

14 . The optical element of claim 11 , wherein the birefringent medium layer includes a PVH film configured with a birefringence that is equal to or less than a predetermined value.

15 . The optical element of claim 14 , wherein the predetermined value is 0.2.

16 . The optical element of claim 14 , wherein the predetermined value is 0.1.

17 . The optical element of claim 11 , wherein the optical element is a single layer PVH element, and the birefringent medium layer includes a single PVH film configured with the vertical pitch varying in the out-of-plane direction.

18 . The optical element of claim 11 , wherein the optical element is a multi-layer PVH element, and the birefringent medium layer includes two PVH films configured with different vertical pitches.

19 . The optical element of claim 11 , wherein the optical element is a multi-layer PVH element, and the birefringent medium layer includes a first PVH film configured with the vertical pitch varying in the out-of-plane direction and a second PVH film configured with a constant vertical pitch.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 26, 2022
From: FENG, XIAYU; LEE, YUN-HAN; AMIRSOLAIMANI, BABAK; WANG, MENGFEI; WANG, JUNREN; LU, LU
To: META PLATFORMS TECHNOLOGIES, LLC
Reel/Frame 060911/0212 →