IP Library › Granted Patent US 12,222,509
Granted Patent B2
US 12,222,509 · App. 18/110,181 · Granted Feb 11, 2025

Light flux diameter expanding element and image display device

Inventor: Osamu Yokoyama (Shiorjiri, JP)
Assignee: SEIKO EPSON CORPORATION
G02B27/0172G02B5/1842G02B5/1866G02B6/124G02B2005/1804G02B26/105G02B2027/011G02B2027/0112G02B2027/0118G02B2027/013G02B2027/0178
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Quick Facts
Patent No.
US 12,222,509
App. No.
18/110,181
Granted
Feb 11, 2025
Kind
B2
Abstract

A light flux diameter expanding element includes a light guiding plate with a light input face and a light output face, and with a thickness of 0.2 mm to 0.8 mm; a diffraction grating on the input side; and a diffraction grating on the output side, and is provided so as to have the same grating period as that of the diffraction grating on the input side, in which a forming region of the diffraction grating on the input side is smaller than that of the output side, and a grating period of the diffraction grating on the input side is a period in which a small diffraction angle in diffraction angles of +1-st order diffracted light and −1-st order diffracted light, which are diffracted in the diffraction grating on the input side, in the light guiding plate becomes larger than a critical angle of the light guiding plate.

Claims (59)

1. A light flux diameter expanding element comprising:

a first light guiding plate with a thickness of 0.2 mm to 0.8 mm that has:

a first input portion into which a first light is incident, the first input portion having a plurality of diffraction gratings that diffracts the first light; and

a first output portion having a plurality of diffraction gratings that emits the first light diffracted by the first input portion; and

a second light guiding plate with a thickness of 0.2 mm to 0.8 mm that has:

a second input portion into which a second light is incident, the second input portion having a plurality of diffraction gratings that diffracts the second light; and

a second output portion having a plurality of diffraction gratings that emits the second light diffracted by the second input portion, wherein

the second light includes a wavelength being larger than a wavelength of the first light,

a length of an interval at which the diffraction gratings is repeated in the second input portion of the second light guiding plate is longer than a length of an interval at which the diffraction gratings is repeated in the first input portion of the first light guiding plate,

a length of an interval at which the diffraction gratings is repeated in the second output portion of the second light guiding plate is longer than a length of an interval at which the diffraction gratings is repeated in the first output portion of the first light guiding plate,

the first input portion of the first light guiding plate diffracts a part of the first light in a first direction as a first diffracted light and diffracts another part of the first light in a second direction different from the first direction as a second diffracted light, and

the first output portion of the first light guiding plate emits both the first diffracted light and the second diffracted light.

2. The light flux diameter expanding element according to claim 1 , wherein,

in the first light guiding plate, the width between the diffraction gratings in the first input portion is equal to the width between the diffraction gratings in the first output portion.

3. The light flux diameter expanding element according to claim 1 , wherein,

in the second light guiding plate, the width between the diffraction gratings in the second input portion is equal to the width between the diffraction gratings in the second output portion.

4. The light flux diameter expanding element according to claim 1 , wherein,

the second input portion of the second light guiding plate diffracts a part of the second light in the first direction as the first diffracted light and diffracts anther part of the second light in the second direction as the second diffracted light.

5. The light flux diameter expanding element according to claim 4 , wherein,

the second output portion of the second light guiding plate emits both of the first diffracted light and the second diffracted light.

6. The light flux diameter expanding element according to claim 1 , wherein,

both of the first light and the second light are incident on the first input portion of the first light guiding plate,

the first input portion of the first light guiding plate transmits the second light, and

the second input portion of the second light guiding plate diffracts the second light transmitted by the first input portion of the first light guiding plate.

7. The light flux diameter expanding element according to claim 6 , wherein,

the first output portion of the first light guiding plate emits the first light toward the second output portion of the second light guiding plate, and

the second output portion of the second light guiding portion emits both of the first light and the second light.

8. The light flux diameter expanding element according to claim 6 , wherein,

in the first light guiding plate, a diffraction angle of the first diffracted light is larger than a critical angle of the first light guiding plate, and

in the first light guiding plate, a diffraction angle of the second diffracted light is larger than the critical angle of the first light guiding plate.

9. The light flux diameter expanding element according to claim 1 ,

wherein in the first light guiding plate, a region of the first input portion is smaller than a region of the first output portion.

10. The light flux diameter expanding element according to claim 1 ,

wherein in the first light guiding plate, a diffraction efficiency of the diffraction gratings in the first output portion is lower than a diffraction efficiency of diffraction gratings in the first input portion.

11. A light flux diameter expanding element comprising:

a first light guiding plate with a thickness of 0.2 mm to 0.8 mm that has:

a first input portion into which a first light is incident, the first input portion having a plurality of diffraction gratings that diffracts the first light; and

a first output portion having a plurality of diffraction gratings that emits the first light diffracted by the first input portion; and

a second light guiding plate with a thickness of 0.2 mm to 0.8 mm that has:

a second input portion into which a second light is incident, the second input portion having a plurality of diffraction gratings that diffracts the second light; and

a second output portion having a plurality of diffraction gratings that emits the second light diffracted by the second input portion, wherein,

the second light includes a wavelength being larger than a wavelength of the first light,

a grating period of the diffraction gratings in the second input portion of the second light guiding plate is larger than a grating period of the diffraction gratings in the first input portion of the first light guiding plate,

a grating period of the diffraction gratings in the second output portion of the second light guiding plate is larger than a grating period of the diffraction gratings in the first output portion of the first light guiding plate,

the first input portion of the first light guiding plate diffracts a part of the first light in a first direction as a first diffracted light and diffracts another part of the first light in a second direction different from the first direction as a second diffracted light, and

the first output portion of the first light guiding plate emits both the first diffracted light and the second diffracted light.

12. The light flux diameter expanding element according to claim 11 , wherein in the first light guiding plate, the grating period of the diffraction gratings in the first input portion is equal to the grating period of the diffraction gratings in the first output portion.

13. The light flux diameter expanding element according to claim 11 , wherein the second light guiding plate, the grating period of the diffraction gratings in the second input portion is equal to the grating period of the diffraction gratings in the second output portion.

14. The light flux diameter expanding element according to claim 11 ,

wherein

the second input portion of the second light guiding plate diffracts a part of the second light in the first direction as the first diffracted light and diffracts another part of the second light in the second direction as the second diffracted light.

15. The light flux diameter expanding element according to claim 14 ,

wherein

the second output portion of the second light guiding plate emits both of the first diffracted light and the second diffracted light.

16. The light flux diameter expanding element according to claim 14 , wherein,

in the first light guiding plate, a diffraction angle of the first diffracted light is larger than a critical angle of the first light guiding plate, and

in the first light guiding plate, a diffraction angle of the second diffracted light is larger than the critical angle of the first light guiding plate.

17. The light flux diameter expanding element according to claim 11 ,

wherein in the first light guiding plate, a region of the first input portion is smaller than a region of the first output portion.

Priority Claims (1)
JP 2016-036787 · Feb 29, 2016 · national
Continuity (4)
Continuation 17197249 · Mar 10, 2021
Continuation 16367985 · Mar 28, 2019
Continuation 15433618 · Feb 15, 2017
Related Publication 20230194877A1 · Jun 22, 2023
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