Patent classifications
G02B27/44
BURIED DIFFRACTIVE GRATINGS FOR OPTICAL ELEMENTS OF AUGMENTED REALITY AND VIRTUAL REALITY HEAD-MOUNTED DISPLAYS
Head-mounted displays with waveguides comprising buried diffractive gratings and methods for fabricating said waveguides are described herein. In an embodiment, a head-mounted display comprises an optical element and an image source that provides an image beam to an optical element. The optical element comprises a first flat surface, a second flat surface, and a buried diffractive grating spaced from and disposed between the first surface and the second surface. The buried diffractive grating comprises a high-refractive index material interspersed with a low-refractive index material or non-solid pockets, such as gas, air or vacuum.
BURIED DIFFRACTIVE GRATINGS FOR OPTICAL ELEMENTS OF AUGMENTED REALITY AND VIRTUAL REALITY HEAD-MOUNTED DISPLAYS
Head-mounted displays with waveguides comprising buried diffractive gratings and methods for fabricating said waveguides are described herein. In an embodiment, a head-mounted display comprises an optical element and an image source that provides an image beam to an optical element. The optical element comprises a first flat surface, a second flat surface, and a buried diffractive grating spaced from and disposed between the first surface and the second surface. The buried diffractive grating comprises a high-refractive index material interspersed with a low-refractive index material or non-solid pockets, such as gas, air or vacuum.
STATIC MULTIVIEW DISPLAY AND METHOD HAVING DIAGONAL PARALLAX
A static multiview display and method of static multiview display operation provide a static multiview image using diffractive gratings to diffractively scatter light from guided light beams having different radial directions. The static multiview display includes a light guide configured to guide plurality of guided light beams and a light source configured to provide the guided light beam plurality having the different radial directions. The static multiview display further includes a plurality of diffraction gratings configured to provide from a portion of the guided light beams directional light beams having intensities and principal angular directions corresponding to view pixels of the static multiview image. The static multiview image has an arrangement of views configured to provide diagonal parallax that may facilitate viewing from a diagonal direction relative to the static multiview display.
STATIC MULTIVIEW DISPLAY AND METHOD HAVING DIAGONAL PARALLAX
A static multiview display and method of static multiview display operation provide a static multiview image using diffractive gratings to diffractively scatter light from guided light beams having different radial directions. The static multiview display includes a light guide configured to guide plurality of guided light beams and a light source configured to provide the guided light beam plurality having the different radial directions. The static multiview display further includes a plurality of diffraction gratings configured to provide from a portion of the guided light beams directional light beams having intensities and principal angular directions corresponding to view pixels of the static multiview image. The static multiview image has an arrangement of views configured to provide diagonal parallax that may facilitate viewing from a diagonal direction relative to the static multiview display.
Near eye 3D display with separate phase and amplitude modulators
Augmented reality glasses include near eye displays the include sources of imagewise amplitude modulated light optical coupled to spatial phase modulators or active zone plate modulators and optically coupled to eye coupling optics. The sources of imagewise amplitude modulated light can include emissive 2D display panels or light sources coupled to imagewise amplitude modulators. The eye coupling optics can include volume holographic diffraction gratings.
Near eye 3D display with separate phase and amplitude modulators
Augmented reality glasses include near eye displays the include sources of imagewise amplitude modulated light optical coupled to spatial phase modulators or active zone plate modulators and optically coupled to eye coupling optics. The sources of imagewise amplitude modulated light can include emissive 2D display panels or light sources coupled to imagewise amplitude modulators. The eye coupling optics can include volume holographic diffraction gratings.
Cascaded pupil-replicating waveguides
- Giuseppe Calafiore ,
- Ningfeng Huang ,
- Andrew Maimone ,
- Andrew Ouderkirk ,
- Hee Yoon Lee ,
- Maxwell Parsons ,
- Scott Charles McEldowney ,
- Babak Amirsolaimani ,
- Pasi Saarikko ,
- Wanli Chi ,
- Alexander Koshelev ,
- Barry David Silverstein ,
- Lu Lu ,
- Wai Sze Tiffany Lam ,
- Gang Li ,
- Stephan Lutgen ,
- Francois Gerard Franck Olivier ,
- David Massoubre
A waveguide assembly is provided. The waveguide assembly includes a pair of pupil-replicating waveguides. The first pupil-replicating waveguide is configured for receiving an input beam of image light and providing an intermediate beam comprising multiple offset portions of the input beam. The second pupil-replicating waveguide is configured for receiving the intermediate beam from the first pupil-replicating waveguide and providing an output beam comprising multiple offset portions of the intermediate beam. The input beam may be expanded by the waveguide assembly in such a manner that pupil gaps are reduced or eliminated.
Cascaded pupil-replicating waveguides
- Giuseppe Calafiore ,
- Ningfeng Huang ,
- Andrew Maimone ,
- Andrew Ouderkirk ,
- Hee Yoon Lee ,
- Maxwell Parsons ,
- Scott Charles McEldowney ,
- Babak Amirsolaimani ,
- Pasi Saarikko ,
- Wanli Chi ,
- Alexander Koshelev ,
- Barry David Silverstein ,
- Lu Lu ,
- Wai Sze Tiffany Lam ,
- Gang Li ,
- Stephan Lutgen ,
- Francois Gerard Franck Olivier ,
- David Massoubre
A waveguide assembly is provided. The waveguide assembly includes a pair of pupil-replicating waveguides. The first pupil-replicating waveguide is configured for receiving an input beam of image light and providing an intermediate beam comprising multiple offset portions of the input beam. The second pupil-replicating waveguide is configured for receiving the intermediate beam from the first pupil-replicating waveguide and providing an output beam comprising multiple offset portions of the intermediate beam. The input beam may be expanded by the waveguide assembly in such a manner that pupil gaps are reduced or eliminated.
Spatially multiplexed volume Bragg gratings with varied refractive index modulations for waveguide display
A waveguide display includes a waveguide transparent to visible light, a first volume Bragg grating (VBG) on the waveguide and characterized by a first refractive index modulation, and a second reflection VBG on the waveguide and including a plurality of regions characterized by different respective refractive index modulations. The first reflection VBG is configured to diffract display light in a first wavelength range and a first field of view (FOV) range such that the display light in the first wavelength range and the first FOV range propagates in the waveguide through total internal reflection to the plurality of regions of the second reflection VBG. The plurality of regions of the second reflection VBG are configured to diffract the display light in different respective wavelength ranges within the first wavelength range and the first FOV range.
Spatially multiplexed volume Bragg gratings with varied refractive index modulations for waveguide display
A waveguide display includes a waveguide transparent to visible light, a first volume Bragg grating (VBG) on the waveguide and characterized by a first refractive index modulation, and a second reflection VBG on the waveguide and including a plurality of regions characterized by different respective refractive index modulations. The first reflection VBG is configured to diffract display light in a first wavelength range and a first field of view (FOV) range such that the display light in the first wavelength range and the first FOV range propagates in the waveguide through total internal reflection to the plurality of regions of the second reflection VBG. The plurality of regions of the second reflection VBG are configured to diffract the display light in different respective wavelength ranges within the first wavelength range and the first FOV range.