G01N27/128

Integrated SMO gas sensor module

Miniature resistive gas detectors incorporate thin films that can selectively identify specific gases when heated to certain characteristic temperatures. A solid state gas sensor module is disclosed that includes a gas sensor, a heater, and a temperature sensor, stacked over an insulating recess. The insulating recess is partially filled with a support material that provides structural integrity. The solid state gas sensor module can be integrated on top of an ASIC on a common substrate. With sufficient thermal insulation, such a gas detector can be provided as a low-power component of mobile electronic devices such as smart phones. A method of operating a multi-sensor array allows detection of relative concentrations of different gas species by either using dedicated sensors, or by thermally tuning the sensors to monitor different gas species.

SENSOR

A sensor is disclosed. The sensor comprises a first substrate; a second substrate positioned relative to the first substrate; a first electrode located between the first substrate and the second substrate, the first electrode formed on the second substrate; a sensing portion covering at least a part of the first electrode and further covering at least a portion of the second substrate; a pad electrode located between the first substrate and the second substrate, wherein the pad electrode is formed on the second substrate and is electrically coupled to the first electrode; and a bonding pad located between the first substrate and the second substrate, wherein the bonding pad is formed on the first substrate and is electrically coupled to the pad electrode.

APPARATUS AND METHODS FOR MANUFACTURING A MICROFLUIDIC DEVICE
20170304825 · 2017-10-26 ·

A microfluidic device includes an integrated circuit and a first substrate layer having a first surface and a second surface. The first surface of the first substrate layer is connected to the integrated circuit. The first substrate layer is in fluid communication with the integrated circuit. The microfluidic device also includes a second substrate layer having a surface area substantially larger than that of the first substrate layer. The second substrate layer includes a first and second surface. The first surface of the second substrate layer is connected to the second surface of the first substrate layer. The second substrate layer includes a first fluid inlet. The second substrate layer is in fluid communication with the integrated circuit through the first substrate layer.

LIGHT-ACTIVATED GAS SENSOR BASED ON 3D NANOSTRUCTURE OPERABLE AT LOW TEMPERATURE WITH HIGH PERFORMANCE AND METHOD FOR MANUFACTURING THE SAME
20220057353 · 2022-02-24 ·

A gas sensor includes a first electrode disposed on a substrate, a second electrode disposed on the substrate and spaced apart from the first electrode, and a sensitive member disposed on the substrate. The sensitive member contacts first and second electrodes and has a porous structure from a three-dimensional (3D) arrangement of shells including a gas-sensitive material. A thickness of the sensitive member is 5 μm to 10 μm, and a thickness of the shells is 10 nm to 40 nm.

Methods, devices, and systems for detecting analytes

This document provides methods, devices, and systems for detecting the presence, absence, or amount of one or more analytes. For example, this document provides methods for using graphene-based sensors to detect one or more analytes (e.g., proteins, nucleic acids, intact cells, intact viruses, intact microorganisms, and/or chemicals).

System and Method for a Transducer in an eWLB Package
20170284951 · 2017-10-05 ·

According to an embodiment, a sensor package includes an electrically insulating substrate including a cavity in the electrically insulating substrate, an ambient sensor, an integrated circuit die embedded in the electrically insulating substrate, and a plurality of conductive interconnect structures coupling the ambient sensor to the integrated circuit die. The ambient sensor is supported by the electrically insulating substrate and arranged adjacent the cavity.

ENVIRONMENTAL SENSOR INTEGRATED IN AN ELECTRONIC DISPLAY DEVICE
20170277342 · 2017-09-28 ·

An environmental sensor for an electronic device includes a substrate, a first sensing unit having a first sensor electrode disposed on the substrate, a second sensing unit having a second sensor electrode disposed on the substrate, an insulating layer covering the first sensor electrode, and a cover that is disposed over the first and second sensor electrodes, the cover including at least one hole through which chemical particles pass. The first and second sensing units each sense one of a capacitance-change due to the chemical particles that pass through the hole and then adhere to the insulating layer located on the first sensor electrode and a resistance-change due to the chemical particles that pass through the hole and then adhere to the second sensor electrode.

Portable electronic device with integrated chemical sensor and method of operating thereof

A portable electronic device and related methods are described using an integrated chemical sensor linked to a chemical sensor processing unit and being sensitive to the concentration of a component in a sample of air and further including an operating system providing instructions for the control of the portable device, wherein the chemical processing unit uses under operating conditions a first set of instructions and a second set of instructions stored within the portable device, wherein the first set of instructions is part of the operating system level of instructions and the second set of instructions is part of a user of instructions with the second set of instructions being linked to the operating system via a plugin interface and wherein the second set of instructions is communicated to the portable device from a remote computing system based on access to measurements and/or operating conditions of the chemical sensor.

Cmos-based process for manufacturing a semiconductor gas sensor

A CMOS-based process for manufacturing a semiconductor gas sensor includes the steps of: I) providing a semi-product, II) etching a substrate to remove a portion of the substrate and a portion of a first insulation layer so as to form a gas-sensing cavity, thereby to expose at least one sensing electrode; and III) depositing a gas-sensitive layer to cover the at least one sensing electrode.

METHOD OF DETERMINING RISK OF ARRHYTHMIA

The present invention relates to a method of determining the risk of drug induced arrhythmia using stem cell derived cardiomyocytes in a high-throughput impedance or multi-electrode array assay.