Patent classifications
G02F2203/60
LIQUID CRYSTAL TEMPERATURE CONTROL BY RESISTIVE HEATING
An optical device includes a first transparent substrate having a first transparent electrode disposed on a surface of the first transparent substrate and a second substrate having a second electrode disposed on a surface of the second substrate and facing the first transparent electrode. A liquid-crystal (LC) material is sandwiched between the first and second electrodes such that a voltage applied between the first and second electrodes controls orientation of the liquid-crystal material. The device includes a control system that applies a current through at least one electrode of the first and second electrodes to resistively heat the LC material.
Optical ring resonator structure with a backside recess
An optical ring resonator structure with a backside recess is provided at a device. The device includes: a substrate having a device-side and a backside opposite the device-side; an optical ring resonator located on the device-side of the substrate; a heater having a shape complementary to the optical ring resonator, the heater positioned to heat the optical ring resonator; and one or more metal traces that connect at least to the heater, the metal traces configured to provide power to the heater and extending outward from the heater. The device further includes a recess on the backside of the substrate, the recess centered on the optical ring resonator, and having a diameter larger than both respective outer diameters of the optical ring resonator and the heater, the recess further extending laterally into a region of the one or more metal traces.
Liquid crystal display device and method for manufacturing LGP positioning block thereof
A light guide plate (LGP) includes a positioning block that includes a positioning block body and a liquid filled and hermetically sealed in a receiving compartment formed in the interior of the positioning block body. The liquid is expandable with a drop of temperature so as to increase a volume thereof and thus enlarge a size of the positioning block body through elasticity of the positioning block body. In this way, the LGP positioning block is adjustable with the variation of the surrounding temperature so as to achieve effective positioning of the light guide plate and providing high reliability of a liquid crystal display device including the light guide plate.
Display device
A display device may include a pixel and a light shutter. The pixel may include a first region and a second region. The light shutter may be disposed in the second region. The light shutter may include a first electrode, a heat generation layer disposed on the first electrode, and a phase change layer disposed on the heat generation layer. The phase change layer may include a phase change material of which optical property is changed depending on temperature.
Exterior mirror with heater pad
A rearview mirror reflective element assembly includes a mirror reflective element, a heater pad, and a back plate. The heater pad includes a heater pad substrate having a plurality of electrically conductive traces established thereat, with the electrically conductive traces including (i) a heating trace that, when powered, heats the heater pad substrate and the mirror reflective element, and (ii) an accessory trace that, when powered, controls an accessory of the mirror reflective element assembly. The electrically conductive traces may include electro-optic control traces that, when electrically powered, darken the mirror reflective element. The heater pad is disposed between the mirror reflective element and the back plate. The accessory trace, when powered, controls a blind zone indicator that is disposed at the rear of the mirror reflective element and that is viewable, when powered, through the mirror reflective element.
ELECTRO-ABSORPTION BIAS CIRCUIT FOR ELECTRO-ABSORPTION MODULATORS
An electro-absorption bias circuit may include a temperature sensor. The electro-absorption bias circuit may include a controller to provide a temperature-dependent control signal based on data received from the temperature sensor. The electro-absorption bias circuit may include a power supply to provide an output voltage based on the temperature-dependent control signal from the controller. The electro-absorption bias circuit may include an electro-absorption driving circuit to output a bias voltage applied to the output voltage provided by the power supply.
Optical dispersion compensator on silicon
An optical dispersion compensator integrated with a silicon photonics system including a first phase-shifter coupled to a second phase-shifter in parallel on the silicon substrate characterized in an athermal condition. The dispersion compensator further includes a third phase-shifter on the silicon substrate to the first phase-shifter and the second phase-shifter through two 22 splitters to form an optical loop. A second entry port of a first 22 splitter is for coupling with an input fiber and a second exit port of a second 22 splitter is for coupling with an output fiber. The optical loop is characterized by a total phase delay tunable via each of the first phase-shifter, the second phase-shifter, and the third phase-shifter such that a normal dispersion (>0) at a certain wavelength in the input fiber is substantially compensated and independent of temperature.
Temperature-compensated optical isolator
The invention relates to an optical isolator comprising a polarizer adapted to polarize a beam of incident light to form a beam of polarized light, an analyzer adapted to transmit said beam of polarized light and to polarize back-reflected light, a magneto-optical element disposed between the polarizer and the analyzer, which magneto-optical element rotates the polarization direction of said beam of polarized light, and a magnet generating a magnetic field penetrating said magneto-optical element. It is an object of the invention to provide a temperature-compensated optical isolator that achieves a high degree of isolation at a minimum insertion loss over a given temperature range, without any need of manual tuning. The invention proposes to make provision for an automatic actuator mechanically connected to said magneto-optical element to move said magneto-optical element relative to said magnet in response to a temperature variation or in response to a variation of the wavelength of the incident light. Alternatively, the automatic actuator may be mechanically connected to said magnet to move said magnet relative to said magneto-optical element.
DISPLAY PANEL, DISPLAY DEVICE AND MANUFACTURING METHOD
A display panel includes an array substrate and an opposing substrate provided oppositely, a liquid crystal, and a compensation structure directly contacting the liquid crystal and having a property of cold expansion and heat contraction, wherein the compensation structure is configured to compensate for a volume change of the liquid crystal under the condition of the liquid crystal being expanded or contracted, such that a cell gap of the display panel remains unchanged. A compensation structure having a property of cold expansion and heat contraction is provided in the liquid crystal of the display panel.
Electro-absorption modulator with local temperature control
Methods, apparatus, and systems are provided including an electro-absorption modulator (EAM) with local temperature control for optical communication. One aspect provides an optical EAM including a semiconductor portion configured to modulate light for transmission or reception of an optical signal. The modulator includes a temperature sensing element configured to sense temperature and to provide an output signal based on the sensed temperature, and a temperature control element configured to control temperature of the semiconductor portion based on the output signal from the temperature sensing element. In one example, the semiconductor portion includes germanium silicon (GeSi).