G02B5/189

Display device and head mount display device

A display device includes a display panel including a substrate and a plurality of display elements disposed on the substrate, and a diffraction panel including a plurality of diffraction patterns disposed on a path of light emitted from the plurality of display elements. The plurality of diffraction patterns are disposed in a first direction to have a first period, each of the plurality of diffraction patterns includes a first refractive layer, a second refractive layer disposed on the first refractive layer, and a third refractive layer disposed on the second refractive layer, and a refractive index of the second refractive layer is higher than a refractive index of the first refractive layer and a refractive index of the third refractive layer.

Optical systems with multi-layer holographic combiners

An electronic device may include a display module that generates image light and an optical system that redirects the light towards an eye box. The optical system may have first hologram structures that replicate the light over multiple output angles onto second hologram structures. The second hologram structures may focus the replicated light onto the eye box. If desired, the device may include an image sensor. The first and second hologram structures may include transmission and/or reflection holograms. The optical system may redirect a first portion of the light to the eye box and a second portion of the light to the sensor. The sensor may generate image data based on the second portion of the light. Control circuitry may compensate for distortions in the first portion of the light by performing feedback adjustments to the display module based on distortions in the image data.

Projector including meta-lens

Provided are projectors, each including a light source configured to emit laser light, a substrate spaced apart from the light source by a distance, a pattern mask including a pattern on a first surface of the substrate, the first surface facing the light source, and a meta-lens including a plurality of first nanostructures on a second surface of the substrate, the second surface facing the first surface, the nanostructures having a shape dimension of a sub-wavelength that is less than a wavelength of light emitted from the light source.

VAPOR CELL AND VAPOR CELL MANUFACTURING METHOD

A vapor cell which can increase the S/N ratio of light as a signal and has high accuracy and a vapor cell manufacturing method are provided. The vapor cell includes: a reflection space (14) provided so as to be able to store a gas containing an alkali metal atom; and an incident light reflection surface, an in-plane reflection portion (17), and an emission light reflection surface provided inside the reflection space (14). The incident light reflection surface has an elevation angle of 45° from an optical path plane so that the incident light incident from a predetermined external direction is reflected in the optical path plane that is perpendicular to the incident light. The in-plane reflection portion (17) has a reflection surface that reflects the reflected light from the incident light reflection surface, the reflection surface being substantially perpendicular to the optical path plane so that the reflected light from the incident light reflection surface is reflected in the optical path plane once or multiple times. The emission light reflection surface has an elevation angle 45° from the optical path plane so that the reflected light from the in-plane reflection portion (17) is reflected in a direction substantially perpendicular to the optical path plane and an emission light is emitted to the outside.

Meta-lens and optical apparatus including the same

Provided is a meta-lens including a first region including a plurality of first nanostructures that are two-dimensionally provided in a circumferential direction and a radial direction, wherein the plurality of first nanostructures are provided based on a first rule, and a plurality of second regions surrounding the first region, each of the plurality of second regions including a plurality of second nanostructures that are two-dimensionally provided in a circumferential direction and a radial direction, wherein the plurality of second nanostructures are provided in each of the plurality of second regions based on a plurality of second rules, respectively, that are different from the first rule.

DISPLAY ASSEMBLY, DISPLAY DEVICE AND DISPLAY METHOD THEREOF
20220221728 · 2022-07-14 ·

A display assembly includes: a display module including a plurality of pixel islands; and a plurality of lens arrays laminated at a light-exiting side of the display module. Each lens array includes a substrate, a cover plate, a first transparent electrode, a second transparent electrode, and a liquid crystal layer and a diffraction lens grating arranged between the first and second transparent electrodes. The diffraction lens grating includes a plurality of diffraction lens grating units corresponding to the plurality of pixel islands. A voltage is applied to each of the first and the second transparent electrodes in such a manner that a refractive index of a liquid crystal molecule in the liquid crystal layer is equal to or not equal to a refractive index of the diffraction lens grating.

LiDAR scanning mirror with a patterned Freznel zone plate profile

Embodiments of the disclosure provide a collimating scanner for an optical sensing system, a method for fabricating the collimating scanner, and a transmitter that includes the collimating scanner. An exemplary collimating scanner may include a scanning mirror configured to steer a light beam towards an object. The collimating scanner may also include a Fresnel zone plate profile patterned on the scanning mirror configured to collimate the light beam. The disclosed collimating scanner eliminates the use a separate collimating lens and thus improves the form factor of the optical sensing system.

AN OPTICAL DEVICE COMPRISING A MULTI-ORDER DIFFRACTIVE FRESNEL LENS (MOD-DFL) AND AN ACHROMATIZING COMPENSATION MECHANISM, AND A METHOD FOR ENHANCING IMAGES CAPTURED USING THE MOD-DFL
20210297601 · 2021-09-23 ·

An optical device is provided that comprises a multi-order diffractive Fresnel lens (MOD-DFL) and an achromatizing compensation mechanism that reduces refractive dispersion created by the MOD-DFL, thereby reducing the focal range of the MOD-DFL. A method is also provided of using the optical device in an image processing system to obtain images of an object and processing the images to perform image enhancement.

META-OPTICAL DEVICE AND ELECTRONIC APPARATUS INCLUDING THE SAME

Provided is a meta-optical device including a first layer including a plurality of first nanostructures and a first material disposed adjacent to the plurality of first nanostructures, a second layer disposed on the first layer, the second layer including a plurality of second nanostructures and a second material disposed adjacent to the plurality of second nanostructures, wherein the first layer and the second layer include regions in which signs of an effective refractive index change rate in a first direction are opposite to each other, and wherein the meta-optical device is configured to obtain a target phase delay profile with respect to incident light of a predetermined wavelength band.

ARRAYS OF INTEGRATED ANALYTICAL DEVICES AND METHODS FOR PRODUCTION

Arrays of integrated analytical devices and their methods for production are provided. The arrays are useful in the analysis of highly multiplexed optical reactions in large numbers at high densities, including biochemical reactions, such as nucleic acid sequencing reactions. The integrated devices allow the highly sensitive discrimination of optical signals using features such as spectra, amplitude, and time resolution, or combinations thereof. The arrays and methods of the invention make use of silicon chip fabrication and manufacturing techniques developed for the electronics industry and highly suited for miniaturization and high throughput.