IP Library Granted Patent US 8,810,878
Granted Patent B2
US 8,810,878 · App. 13/677,588 · Granted Aug 19, 2014

Optical device and virtual image display

Inventors: Katsuyuki Akutsu (Kanagawa, JP); Satoshi Nakano (Kanagawa, JP); Hiroshi Mukawa (Kanagawa, JP)
Assignee: Sony Corporation
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Quick Facts
Patent No.
US 8,810,878
App. No.
13/677,588
Granted
Aug 19, 2014
Kind
B2
Abstract

An optical device includes: a light guide plate receiving, for each of N types of wavelength bands, a plurality of parallel light beams with different incident angles each corresponding to view angles, and guiding the received parallel light beams; a first and a second volume hologram gratings of reflection type having a diffraction configuration which includes N types of interference fringes each corresponding to the N types of wavelength bands, and diffracting/reflecting the parallel light beams. The optical device satisfies for each wavelength band, a relationship of ‘P>L’, where ‘L’ represents a central diffraction wavelength in the first and second volume hologram gratings, defined for a parallel light beam corresponding to a central view angle, and ‘P’ represents a peak wavelength of the parallel light beams.

Claims (23)

1. An optical device comprising:

a light source;

a light guide plate configured to receive light, and to guide the received light;

a first grating configured to diffract light entering the light guide plate; and

a second grating configured to diffract light which has been propagated through the light guide plate,

wherein a peak wavelength of the light source is closer to a central diffraction wavelength of the light with a first view angle having a given magnitude in a first angular direction relative to a zero degree viewing angle and which is diffracted a higher number of times in the second grating than a central diffraction wavelength of the light with a second view angle having the same given magnitude in a second angular direction opposite to the first angular direction and relative to the zero degree viewing angle and which is diffracted a lower number of times in the second grating, and

wherein a diffraction efficiency at the first view angle of the first grating is higher than a diffraction efficiency at the second view angle of the first grating.

2. The optical device according to claim 1 , wherein an intensity of a first diffracted light by the first grating which corresponds to the first view angle is higher than an intensity of a second diffracted light by the first grating which corresponds to the second view angle.

3. The optical device according to claim 1 , wherein interference fringes of the first grating have the same slant angle.

4. The optical device according to claim 1 , wherein the optical device is configured, to satisfy a relationship of P>L, where L represents a central diffraction wavelength

in the first gratings which corresponds to a central view angle, and P represents a peak wavelength of the light source.

5. The optical device according to claim 1 , wherein the peak wavelength of the light source is closer to the central diffraction wavelength of the light with the first view angle than the central diffraction wavelength of the light with the zero degree viewing angle.

6. An optical device comprising:

a light source;

a light guide plate configured to receive light, and to guide the received light;

a first grating configured to diffract light entering the light guide plate; and

a second grating configured to diffract light which has been propagated through the light guide plate,

wherein a peak wavelength of the light source is closer to a central diffraction wavelength of the light with a first view angle having a given magnitude in a first angular direction relative to a zero degree viewing angle and which is diffracted a higher number of times in the second grating than a central diffraction wavelength of the light with a second view angle having the same given magnitude in a second angular direction opposite to the first angular direction and relative to the zero degree viewing angle and which is diffracted a lower number of times in the second grating, and

wherein an intensity of a first diffracted light by the first grating which corresponds to the first view angle is higher than an intensity of a second diffracted light by the first grating which corresponds to the second view angle.

7. The optical device according to claim 6 , wherein a diffraction efficiency at the first view angle of the first grating is higher than a diffraction efficiency at the second view angle of the first grating.

8. The optical device according to claim 6 , wherein interference fringes of the first grating have the same slant angle.

9. The optical device according to claim 6 , wherein the optical device is configured, to satisfy a relationship of P>L, where L represents a central diffraction wavelength in the first gratings which is corresponding to a central view angle, and P represents a peak wavelength of the light source.

10. The optical device according to claim 6 , wherein the peak wavelength of the light source is closer to the central diffraction wavelength of the light with the first view angle than the central diffraction wavelength of the light with the zero degree viewing angle.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 29, 2012
From: AKUTSU, KATSUYUKI; NAKANO, SATOSHI; MUKAWA, HIROSHI
To: SONY CORPORATION
Reel/Frame 029373/0603 →
Priority Claims (1)
JP 2008-151430 · Jun 10, 2008 · national
Continuity (2)
Continuation 12481284 · Jun 9, 2009
Related Publication 20130077141A1 · Mar 28, 2013