H01L27/16

Thermoelectric micro-supercapacitor integrated device and manufacturing method thereof

The present invention provides a thermoelectric micro-supercapacitor integrated device comprising: a thermoelectric power generation module comprising a thermoelectric unit body including a thermoelectric channel interposed between two different heat sources and disposed on a substrate, the thermoelectric channel being composed of an n-type or p-type semiconductor; and a micro-supercapacitor module configured to be operated in cooperation with the thermoelectric power generation module and including a pair of collector electrodes between which an electric potential difference is generated through the thermoelectric channel.

DEVICES AND SYSTEMS INCORPORATING ENERGY HARVESTING COMPONENTS/DEVICES AS AUTONOMOUS ENERGY SOURCES AND AS ENERGY SUPPLEMENTATION, AND METHODS FOR PRODUCING DEVICES AND SYSTEMS INCORPORATING ENERGY HARVESTING COMPONENTS/DEVICES

An electrically-powered device, structure and/or component is provided that includes an attached electrical power source in a form of a unique, environmentally-friendly energy harvesting element or component. The energy harvesting component provides a mechanism for generating autonomous renewable energy, or a renewable energy supplement, in the integrated circuit system, structure and/or component. The energy harvesting element includes a first conductor layer, a low work function layer, a dielectric layer, and a second conductor layer that are particularly configured in a manner to promote electron migration from the low work function layer, through the dielectric layer, to the facing surface of the second conductor layer in a manner that develops an electric potential between the first conductor layer and the second conductor layer. The energy harvesting component includes a plurality of energy harvesting elements electrically connected to one another to increase an electrical power output.

Display substrate and method for manufacturing the same, fingerprint recognition device and display device

A display substrate, a method for manufacturing the display substrate, a fingerprint recognition device and a display device are provided. The display substrate includes a base substrate, a black matrix sensor provided on the base substrate and a plurality of functional sensors which are spaced apart from each other, the black matrix sensor blocks at least visible light and includes a plurality of first extension portions and a plurality of second extension portions, and the first extension portions intersect the second extension portions to form a plurality of hollow regions. Orthographic projections of the functional sensors on the black matrix sensor are within the region where the black matrix sensor is located.

Thermoelectric apparatus and applications thereof
10868077 · 2020-12-15 · ·

In some embodiments, thermoelectric apparatus and various applications of thermoelectric apparatus are described herein. In some embodiments, a thermoelectric apparatus described herein comprises at least one p-type layer coupled to at least one n-type layer to provide a pn junction, and an insulating layer at least partially disposed between the p-type layer and the n-type layer, the p-type layer comprising a plurality of carbon nanoparticles and the n-type layer comprising a plurality of n-doped carbon nanoparticles.

Active thermal pattern sensor comprising a passive matrix of pixels

Thermal pattern sensor including a matrix of multiple rows and columns of pixels, each pixel comprising: - a pyroelectric capacitor comprising a pyroelectric portion positioned between lower and upper electrodes, in which a first of these electrodes forms a readout electrode; and a heating element that is capable of heating the pyroelectric portion of said pixel; and in which: - for each row of pixels, the heating elements are capable of heating the pyroelectric portion of the pixels of the row independently of the heating elements of the pixels of the other rows; and for each column of pixels, the readout electrodes of each pixel are electrically linked to one another and are formed by a first electrically conductive portion that makes contact with the pyroelectric portions of the pixels of the column, and that is separate from the first portions of the other columns.

Semiconductor structure and manufacturing method thereof

A semiconductor structure includes a first die including a first surface and a second surface opposite to the first surface; a first molding surrounding the first die; and a first redistribution layer (RDL) disposed over the second surface of the first die and the first molding, and including a first dielectric layer, a first interconnect structure surrounded by the first dielectric layer, and a cooling mechanism disposed within the first dielectric layer, wherein the cooling mechanism includes a first conductive member, a second conductive member disposed opposite to the first conductive member, a first thermoelectric member and a second thermoelectric member adjacent to the first thermoelectric member; and wherein the first thermoelectric member and the second thermoelectric member extend substantially in parallel to the second surface of the first die and extend between the first conductive member and the second conductive member.

THERMOPILE-BASED FLOW SENSING DEVICE

Example systems, apparatuses, and methods are disclosed sensing a flow of fluid using a thermopile-based flow sensing device. An example apparatus includes a flow sensing device comprising a heating structure having a centerline. The flow sensing device may further comprise a thermopile. At least a portion of the thermopile may be disposed over the heating structure. The thermopile may comprise a first thermocouple having a first thermocouple junction disposed upstream of the centerline of the heating structure. The thermopile may further comprise a second thermocouple having a second thermocouple junction disposed downstream of the centerline of the heating structure.

Tunable Infrared Pixels via Monolithically Integrated Dynamic Metasurfaces

A monolithically integrated, tunable infrared pixel comprises a combined broadband detector and graphene-enabled tunable metasurface filter that operate as a single solid-state device with no moving parts. Functionally, tunability results from the plasmonic properties of graphene that are acutely dependent upon the carrier concentration within the infrared. Voltage induced changes in graphene's carrier concentration can be leveraged to change the metasurface filter's transmission thereby altering the colors of light reaching the broadband detector and hence its spectral responsivity. The invention enables spectrally agile infrared detection with independent pixel-to-pixel spectral tunability.

Process for fabricating a piezoelectric nanogenerator, piezoelectric nanogenerator obtained by this process and device including such a piezoelectric nanogenerator

The invention relates to a process for fabricating a piezoelectric nanogenerator, to a piezoelectric nanogenerator obtained by this process and to a device including such a piezoelectric nanogenerator connected to a capacitor, said process comprising the following steps: a) providing a membrane (100) made of polarised -PVDF or polarised P(VDF-TrFe) copolymer and therefore having piezoelectric properties, said membrane (100) moreover having two external major faces (11, 12) that are separated by a membrane thickness (e); b) irradiating the entirety of the thickness of said membrane (100), via at least one of its two external major faces (11, 12), with heavy ions having a fluence of between 103 ions/cm2 and 1010 ions/cm2, as a result of which a membrane (101) containing latent traces (TL) of the passage of the heavy ions through the entirety of its thickness is obtained; c) revealing the latent traces (TL) using a chemical process of length that is preset so as to preserve a defect zone (ZD) belonging to the latent trace, as a result of which a nanostructured membrane is obtained having nanopores including, around each nanopore, a defect zone (ZD); d) depositing a layer of an electrical conductor on one (12) of the two external major faces (11, 12) of said membrane; e) electrodepositing an electrical conductor or semiconductor in the nanopores, the electrodeposition being stopped before the nanopores have been completely filled, as a result of which a nanostructured membrane is obtained having nanowires (15) partially filling the nanopores; and f) depositing a layer, of an electrical conductor, on the other (11) of the two external major faces (11, 12) and which therefore does not make contact with the nanowires.

Cascade-type hybrid energy cell
10818817 · 2020-10-27 · ·

There is described a cascade-type compact hybrid energy cell (CHEC) that is capable of individually and concurrently harvesting solar, strain and thermal energies. The cell comprises an n-p homojunction nanowire (NW)-based piezoelectric nanogenerator and a nanocrystalline/amorphous-Si:H single junction cell. Under optical illumination of 10 mW/cm.sup.2 and mechanical vibration of 3 m/s.sup.2 at 3 Hz frequency, the output current and voltage from a single 1.0 cm.sup.2-sized CHEC was found to be 280 A and 3.0 V, respectivelythis is are sufficient to drive low-power commercial electronics. Six such CHECs connected in series were found to generate enough electrical power to light emitting diodes or drive a wireless strain gauge sensor node.