H10D30/6215

Semiconductor structure and fabrication method thereof, and static random access memory cell

A method for forming a semiconductor having a plurality of FinFETs. The method includes providing a semiconductor substrate having a surface; and forming a plurality of first fins and a plurality of second fins on the surface of the semiconductor substrate. Further, the method also includes forming a mask layer on top surfaces of the plurality of first fins and the plurality of second fins; and forming an insulation material layer covering side surfaces of the first fins, the second fins and the mask layer. Further, the method includes removing a portion of the mask layer on the first fins; and forming a continuous first gate structure covering side and top surfaces of a plurality of first fins and a discontinuous second gate structure covering only the side surfaces of the second fins and the side surfaces of the mask layer.

SEMICONDUCTOR DEVICE REPLACEMENT METAL GATE WITH GATE CUT LAST IN RMG

A technique relates to forming a semiconductor device. A starting semiconductor device having a fin structure patterned in a substrate, and a gate formed over the fin structure, the gate having a mid-region and an end-region is first provided. A trench is then patterned over the mid-region of the gate and a trench is patterned over the end-region of the gate. The patterned trenches are then etched over the mid-region of the gate and the end-region of the gate to form the trenches. A conformal low-k dielectric layer can then be deposited over the structure to fill the trenches and pinch off the trench formed in the mid-region and the trench formed in the end-region.

SEMICONDUCTOR DEVICE REPLACEMENT METAL GATE WITH GATE CUT LAST IN RMG

A technique relates to forming a semiconductor device. A starting semiconductor device having a fin structure patterned in a substrate, and a gate formed over the fin structure, the gate having a mid-region and an end-region is first provided. A trench is then patterned over the mid-region of the gate and a trench is patterned over the end-region of the gate. The patterned trenches are then etched over the mid-region of the gate and the end-region of the gate to form the trenches. A conformal low-k dielectric layer can then be deposited over the structure to fill the trenches and pinch off the trench formed in the mid-region and the trench formed in the end-region.

ENHANCED CHANNEL STRAIN TO REDUCE CONTACT RESISTANCE IN NMOS FET DEVICES

A semiconductor device includes a substrate, a fin structure and an isolation layer formed on the substrate and adjacent to the fin structure. The semiconductor device includes a gate structure formed on at least a portion of the fin structure and the isolation layer. The semiconductor device includes an epitaxial layer including a strained material that provides stress to a channel region of the fin structure. The epitaxial layer has a first region and a second region, in which the first region has a first doping concentration of a first doping agent and the second region has a second doping concentration of a second doping agent. The first doping concentration is greater than the second doping concentration. The epitaxial layer is doped by ion implantation using phosphorous dimer.

Substantially planar electronic devices and circuits

A method of manufacturing a substantially planar electronic device is disclosed. The method employs a resist having three different thicknesses used for defining different structures in a single masking step. Exemplary structures are substantially planar transistors having side-gates and diodes.

Vertical field effect transistors having epitaxial fin channel with spacers below gate structure

A method of fabricating a vertical field effect transistor comprising that includes forming openings through a spacer material to provide fin structure openings to a first semiconductor material, and forming an inner spacer liner on sidewalls of the fin structure openings. A channel semiconductor material is epitaxially formed on a surface of the first semiconductor material filling at least a portion of the fin structure openings. The spacer material is recessed with an etch that is selective to the inner spacer liner to form a first spacer. The inner spacer liner is removed selectively to the channel semiconductor material. A gate structure on the channel semiconductor material, and a second semiconductor material is formed in contact with the channel semiconductor material.

FinFET Memory Device
20170077106 · 2017-03-16 ·

A FinFET system comprises a first inverter comprising a first p-type pull-up transistor (PU) and a first n-type pull-down transistor (PD connected in series with the first PD, a second inverter cross-coupled to the first inverter comprising a second PU and a second PD connected in series with the second PD, a first pass-gate transistor, wherein the first pass-gate transistor is coupled between the first inverter and a first bit line, a second pass-gate transistor, wherein the second pass-gate transistor is coupled between the second inverter and a second bit line, a first dummy transistor coupled to a first common node of the first PU and the first PD and a second dummy transistor coupled to a second common node of the second PU and the second PD.

VERTICAL SLIT TRANSISTOR WITH OPTIMIZED AC PERFORMANCE
20170077306 · 2017-03-16 ·

A vertical slit transistor includes raised source, drain, and channel regions in a semiconductor substrate. Two gate electrodes are positioned adjacent respective sidewalls of the semiconductor substrate. A dielectric material separates the gate electrodes from the source and drain regions.

FinFET structures having silicon germanium and silicon channels

Silicon and silicon germanium fins are formed on a semiconductor wafer or other substrate in a manner that facilitates production of closely spaced nFET and pFET devices. A patterned mandrel layer is employed for forming one or more recesses in the wafer prior to the epitaxial growth of a silicon germanium layer that fills the recess. Spacers are formed on the side walls of the patterned mandrel layer followed by removal of the mandrel layer. The exposed areas of the wafer and silicon germanium layer between the spacers are etched to form fins usable for nFET devices from the wafer and fins usable for pFET devices from the silicon germanium layer.

SEMICONDUCTOR DEVICE
20170062445 · 2017-03-02 ·

A semiconductor device includes: a fin that is a portion of a semiconductor substrate, protrudes from a main surface of the semiconductor substrate, has a width in a first direction, and extends in a second direction; a control gate electrode that is arranged on the fin via a first gate insulating film and extends in the first direction; and a memory gate electrode that is arranged on the fin via a second gate insulating film and extends in the first direction. Further, a width of the fin in a region in which the memory gate electrode is arranged via the second gate insulating film having a film thickness larger than the first gate insulating film is smaller than a width of the fin in a region in which the control gate electrode is arranged via the first gate insulating film.