H10D10/021

SUPERLATTICE LATERAL BIPOLAR JUNCTION TRANSISTOR

A bipolar junction transistor includes an intrinsic base formed on a substrate. The intrinsic base includes a superlattice stack including a plurality of alternating layers of semiconductor material. A collector and emitter are formed adjacent to the intrinsic base on opposite sides of the base. An extrinsic base structure is formed on the intrinsic base.

Nanostructures and methods for manufacturing the same
09680039 · 2017-06-13 · ·

A resonant tunneling diode, and other one dimensional electronic, photonic structures, and electromechanical MEMS devices, are formed as a heterostructure in a nanowhisker by forming length segments of the whisker with different materials having different band gaps.

Semiconductor device having buried region beneath electrode and method to form the same

A semiconductor device and a process to form the same are disclosed. The semiconductor device includes a support, an active semiconductor stack including a first semiconductor layer, a second semiconductor layer, and a third semiconductor layer, the first to third semiconductor layers being sequentially stacked on the support, and an electrode on the third semiconductor layer. The first semiconductor layer and the second semiconductor layer provide a buried region in a portion under the electrode, the buried region being filled with a material having a first dielectric constant smaller than a second dielectric constant of the first semiconductor layer and a third dielectric constant of the second semiconductor layer.

Bipolar transistor structure and a method of manufacturing a bipolar transistor structure

According to various embodiments, a bipolar transistor structure may include: a substrate; a collector region in the substrate; a base region disposed over the collector region, an emitter region disposed over the base region; a base terminal laterally electrically contacting the base region, wherein the base terminal includes polysilicon.

Lateral bipolar junction transistor with abrupt junction and compound buried oxide

A lateral bipolar junction transistor (LBJT) device that may include a dielectric stack including a pedestal of a base region passivating dielectric and a nucleation dielectric layer; and a base region composed of a germanium containing material or a type III-V semiconductor material in contact with the pedestal of the base region passivating dielectric. An emitter region and collector region may be present on opposing sides of the base region contacting a sidewall of the pedestal of the base region passivating dielectric and an upper surface of the nucleation dielectric layer.

III-N based material structures, methods, devices and circuit modules based on strain management

The disclosure describes the use of strain to enhance the properties of p- and n-materials so as to improve the performance of III-N electronic and optoelectronic devices. In one example, transistor devices include a channel aligned along uniaxially strained or relaxed directions of the III-nitride material in the channel. Strain is introduced using buffer layers or source and drain regions of different composition

Superlattice lateral bipolar junction transistor

A bipolar junction transistor includes an intrinsic base formed on a substrate. The intrinsic base includes a superlattice stack including a plurality of alternating layers of semiconductor material. A collector and emitter are formed adjacent to the intrinsic base on opposite sides of the base. An extrinsic base structure is formed on the intrinsic base.

Advanced heterojunction devices and methods of manufacturing advanced heterojunction devices
09666702 · 2017-05-30 ·

Methods of manufacture of advanced electronic and photonic structures including heterojunction transistors, transistor lasers and solar cells and their related structures, are described herein. Other embodiments are also disclosed herein.

Integrated circuit heat dissipation using nanostructures

An approach for heat dissipation in integrated circuit devices is provided. A method includes forming an isolation layer on an electrically conductive feature of an integrated circuit device. The method also includes forming an electrically conductive layer on the isolation layer. The method additionally includes forming a plurality of nanowire structures on a surface of the electrically conductive layer.

Manufacturable thin film gallium and nitrogen containing devices

A method for manufacturing a laser diode device includes providing a substrate having a surface region and forming epitaxial material overlying the surface region, the epitaxial material comprising an n-type cladding region, an active region comprising at least one active layer overlying the n-type cladding region, and a p-type cladding region overlying the active layer region. The epitaxial material is patterned to form a plurality of dice, each of the dice corresponding to at least one laser device, characterized by a first pitch between a pair of dice, the first pitch being less than a design width. Each of the plurality of dice are transferred to a carrier wafer such that each pair of dice is configured with a second pitch between each pair of dice, the second pitch being larger than the first pitch.