H10F77/407

OPTICAL SENSOR

An optical sensor includes: a light emitting element 40; a lower substrate 20 on which the light emitting element 40 is provided; an upper substrate 10 provided so that the light emitting element 40 is positioned between the upper substrate 10 and the lower substrate 20; and an optical block 30 provided on the upper substrate 10. The upper substrate 10 includes a division-type photodiode SD. The optical block 30 is configured to reflect light emitted from the light emitting element 40 toward a measurement target R, and light reflected by the measurement target R is incident onto the division-type photodiode SD.

OPTOELECTRONIC MODULE WITH CUSTOMIZABLE SPACERS
20170047362 · 2017-02-16 · ·

The disclosure describes customizable optoelectronic modules and methods for standardizing a plurality of the customizable optoelectronic modules. The customizable optoelectronic modules can be configured to mitigate dimensional variations and misalignments in a number of their respective constituent components such as optical assemblies and sensor covers. The customizable optoelectronic modules and methods for standardizing a plurality of the customizable optoelectronic modules can obviate the need for binning during manufacturing thereby saving considerable resources such as time and expense.

Sensor package with exposed sensor array and method of making same
09570634 · 2017-02-14 · ·

A packaged sensor assembly and method of forming that includes a first substrate having opposing first and second surfaces and a plurality of conductive elements each extending between the first and second surfaces. A second substrate comprises opposing front and back surfaces, one or more detectors formed on or in the front surface, and a plurality of contact pads formed at the front surface which are electrically coupled to the one or more detectors. A third substrate is mounted to the front surface to define a cavity between the third substrate and the front surface, wherein the third substrate includes a first opening extending from the cavity through the third substrate. The back surface is mounted to the first surface. A plurality of wires each extend between and electrically connecting one of the contact pads and one of the conductive elements.

Device for detecting surface plasmon and polarization by using topological insulator, method of manufacturing the device, and method of detecting surface plasmon and polarization

A device for detecting a surface plasmon and polarization includes: a topological insulating layer formed on a substrate; first and second electrodes formed on the topological insulating layer; and a waveguide connected to the topological insulating layer between the first and second electrodes.

Sensor module and method of manufacturing the same

The opto-electronic module (1) comprises a first substrate member (P); a third substrate member (B); a second substrate member (O) arranged between said first and third substrate members and comprising one or more transparent portions (ta, tb) through which light can pass, said at least one transparent portion comprising at least a first optical structure (5a;5a;5b;5b); a first spacer member (S1) comprised in said first substrate member (P) or comprised in said second substrate member (O) or distinct from and located between these, which comprises at least one opening (4a;4b); a second spacer member (S2) comprised in said second substrate member (O) or comprised in said third substrate member (B) or distinct from and located between these, which comprises at least one opening (3); a light detecting element (D) arranged on and electrically connected to said first substrate member (P); a light emission element (E) arranged on and electrically connected to said first substrate member (P); and a sensing element (8) comprised in or arranged at said third substrate member (B). Such modules (1) are particularly suitable as sensor modules for sensing a magnitude such as a pressure.

Solid state detection devices, methods of making and methods of using

The present application is directed to a solid state device for detecting neutrons. The device includes a semiconductor substrate having pores. The device also includes a p- or n-type doping layer formed on a surface of the pores. Moreover, a layer of fill material is formed on the p- or n-type doping layer. The present application also is directed to a method of making a solid state device. Further, the present application is directed to a method of detecting efficiency of solid state detector devices.

DETECTION DEVICE COMPRISING AN IMPROVED COLD FINGER

The detection device comprises a cold finger which performs the thermal connection between a detector and a cooling system. The cold finger comprises at least one side wall at least partially formed by an area made from the amorphous metal alloy. Advantageously, the whole of the cold finger is made from the amorphous metal alloy.

PHOTOVOLTAIC MODULES WITH LASER WELDED GLASS
20250126902 · 2025-04-17 ·

Described herein are photovoltaic devices and methods which utilize femtosecond (fs) lasers to create a glass/glass weld, hermetically encapsulating photovoltaic devices that provide both reduced cost and increased cell life and efficiency. For example, glass/glass welds can reduce manufacturing time and costs, increase cell life by removing encapsulant failure which is a leading cause of cell degradation and provide for increased optical properties, which improves cell efficiency.

SOLAR CELL MODULE
20250133861 · 2025-04-24 · ·

A solar cell module having a design region corresponding to a power-generating cell, wherein the design region consists of one unit region or a repeat of two or more unit regions, the unit region consists of a plurality of partial regions having different average transmittances throughout the entire design region, and the average transmittance throughout the entire design region and the area fraction in the unit region, of each of the partial regions are set to satisfy Formula 1 in which the average transmittance of the design region is not less than an arbitrary constant:

[00001] [ Math . 1 ] T d = .Math. m = 1 n ( T a _ m .Math. R p _ m ) C Formula 1

Composition and process for making a porous inorganic oxide coating

The invention relates to a coating composition for making a porous inorganic oxide coating layer on a substrate, the composition comprising an inorganic oxide precursor as binder, a solvent, and a synthetic polyampholyte as pore forming agent. The size of the pores in the coating can be advantageously controlled by the comonomer composition of the polyampholyte, and/or by selecting conditions like temperature, pH, salt concentration, and solvent composition when making the composition. The invention also relates to a method of making such coating composition, to a process of applying a coating on a substrate using such composition, and to such coated substrate showing a specific combination of optical and mechanical properties.