Abstract:
Disclosed herein is a reference voltage generator circuit for providing and regulating a reference voltage. In one embodiment, the generator circuit includes a first subcircuit configured to provide a bias current based on a supply voltage, where the bias current varies based on at least one performance characteristic of components comprised in the first subcircuit. The circuit also includes a second subcircuit coupled to the first subcircuit and the supply voltage. In this embodiment, the second subcircuit includes first components configured to generate a bias voltage based on and proportional to the bias current, and second components having the at least one performance characteristic. In addition, the second components in such an embodiment are configured to generate a compensation voltage based on the bias voltage that varies inversely to variations in the bias voltage to compensate for the variations in the bias voltage. Furthermore, the second circuit is further configured to generate the reference voltage based on the bias voltage and the compensation voltage. Also disclosed is a method of manufacturing a reference voltage generator circuit for providing and regulating a reference voltage.
Abstract:
A single transistor random access memory cell has an MOS well, a transfer gate of the transistor and a storage capacitor having a storage node in the well that becomes an inversion layer at a threshold voltage near zero. The inversion layer diffuses to an inversion region beneath the transfer gate when the transfer gate is turned on. For high speed operation, a doped region beneath the transfer gate becomes an inversion layer at a threshold voltage near zero. In this invention, a storage node junction is removed, which removes junction leakage and reduces subthreshold leakage current significantly.
Abstract:
A monolithic fluid injection device. A substrate, a structural layer formed thereon, a manifold installed in the substrate to supply fluid, a plurality of first chambers and at least one second chamber installed between the substrate and the structural layer to contain fluid, a channel between the substrate and the structural layer to supply fluid to the second chamber, and a plurality of nozzles through the structural layer, connected with the first and second chambers, to inject fluid, are formed such that the manifold connects directly to the first chambers, and indirectly to the second chamber. A method of fabricating the above monolithic fluid injection device is also disclosed.
Abstract:
A microinjector comprises a chamber for containing fluid, an orifice in fluid communication with the chamber, the orifice being disposed above the chamber, an actuator disposed proximately adjacent the orifice and external to the chamber for ejecting fluid from the chamber, a metal layer disposed above the chamber, and a conduction channel connected between the metal layer and ground, for preventing parasitic capacitance.
Abstract:
An optical blood glucose detecting apparatus and an operating method thereof are disclosed. The optical blood glucose detecting apparatus includes a detecting module, an assisting and strengthening module, and a data processing module. The detecting module provides an incident optical signal passing through a detected portion of skin surface into a skin interstitial fluid, captures a blood glucose optical reflection message of the skin interstitial fluid, and it interferes the blood glucose optical reflection message and the incident optical signal to generate a detected data. The assisting and strengthening module provides a physical or chemical effect on a tissue region under the detected portion to strengthen the blood glucose optical reflection message. The data processing module processes the detected data to determine a blood glucose concentration.
Abstract:
An optical touch apparatus includes an inputting interface, an optical module, a light receiving module, and a processing module. The inputting interface includes a surface and a light transmitting unit under the surface. The optical module and the light receiving module are set on a first side and a second side of the inputting interface. The optical module receives an incident beam and generates a plurality of parallel sensing lights according to the incident beam. When the plurality of parallel sensing lights pass the light transmitting unit to the light receiving module, the light receiving module generates a sensing result according to the condition the light receiving module receives the plurality of sensing lights. The processing module determines a touch point position formed on the surface according to the sensing result.
Abstract:
An optical touch apparatus including an input interface, at least one sensing module, and a processing module is disclosed. The input interface includes at least one functional input key, and the position of the at least one functional input key disposed on the input interface corresponds to that of the at least one sensing module disposed on the surrounding of the input interface. The at least one sensing module generates a sensing result according to the condition that the at least one sensing module receives sensing lights. The processing module determines touch point position formed on the input interface according to the sensing result.
Abstract:
A memory assist apparatus includes a detection circuit and a compensation circuit. The detection circuit is configured to provide a detection signal indicating whether a bit line configured to provide read access to a data bit stored at a memory bit cell has a voltage below a predetermined threshold. The compensation circuit is configured to pull down the voltage of the bit line if the detection signal indicates that the voltage of the bit line is below the predetermined threshold.
Abstract:
A fundus optical image device includes a light source, a first optical element set and a second optical element set. The first optical element set includes a first diaphragm. The light emitted from the light source passes through the first diaphragm and reaches a fundus through the first optical element set. The second optical element set includes a second diaphragm. The light is reflected by the fundus and then passes through the second diaphragm to present an image of the fundus. At least one of the first diaphragm and the second diaphragm is a microarray diaphragm.
Abstract:
An intraocular pressure detecting device includes an image capturing unit, a processor, and a pressure detection unit. The image capturing unit, coupled to the image capturing unit, is capable of acquiring an eye image. According to the eye image, the processor can determine an intraocular pressure detection area. After the pressure detection unit detects the intraocular pressure detection area, the intraocular pressure is calculated by the processor of the intraocular pressure detecting device.