Abstract: A method of forming a gate insulator in the manufacture of a semiconductor device comprises conducting a photo-assisted electrochemical process to form a gate-insulating layer on a gallium nitride layer of the semiconductor device, wherein the gate-insulating layer includes gallium oxynitride and gallium oxide, and performing a rapid thermal annealing process. The photo-assisted electrochemical process uses an electrolyte bath including buffered CH3COOH at a pH between about 5.5 and 7.5. The rapid thermal annealing process is conducted in O2 environment at a temperature between about 500° C. and 800° C.
Type:
Grant
Filed:
December 6, 2004
Date of Patent:
August 7, 2007
Assignee:
Tekcore Co., Ltd.
Inventors:
Lung-Han Peng, Han-Ming Wu, Jing-Yi Lin
Abstract: A semiconductor device having a field effect transistor and a method of forming the same are provided. The semiconductor device preferably includes a device active pattern disposed on a predetermined region of the substrate. The gate electrode preferably crosses over the device active pattern, interposed by a gate insulation layer. A support pattern is preferably interposed between the device active pattern and the substrate. The support pattern can be disposed under the gate electrode. A filling insulation pattern is preferably disposed between the device active pattern and the filling insulation pattern. The filling insulation pattern may be disposed under the source/drain region. A device active pattern under the gate electrode is preferably formed of a strained silicon having a lattice width wider than a silicon lattice.
Type:
Grant
Filed:
March 24, 2005
Date of Patent:
July 24, 2007
Assignee:
Samsung Electronics Co., Ltd.
Inventors:
Chang-Woo Oh, Dong-Gun Park, Dong-Won Kim, Jeong-Dong Choe
Abstract: A semiconductor wafer is produced at a step of forming a lattice relaxation or a partly lattice-relaxed strain relaxation SiGe layer on an insulating layer in a SOI wafer comprising an insulating layer and a SOI layer, wherein at least an upper layer side portion of the SiGe layer is formed on the SOI layer at a gradient of Ge concentration gradually decreasing toward the surface and then subjected to a heat treatment in an oxidizing atmosphere.
Abstract: A method of forming an electrically insulating layer (130) on a compound semiconductor (110) comprises: providing a compound semiconductor structure; preparing an upper surface (111) of the compound semiconductor structure to be chemically clean; forming a template (120) on the compound semiconductor structure using a first precursor in a metalorganic chemical vapor deposition (MOCVD) system or a chemical beam epitaxy (CBE) system; and introducing oxygen and a second precursor to the MOCVD system in order to form the electrically insulating layer.
Type:
Application
Filed:
October 11, 2005
Publication date:
April 12, 2007
Applicant:
Freescale Semiconductor, Inc.
Inventors:
Jonathan Abrokwah, Ravindranath Droopad, Matthias Passlack
Abstract: A method comprises providing a semiconductor alloy layer on a semiconductor substrate, forming a gate structure on the semiconductor alloy layer, forming source and drain regions in the semiconductor substrate on both sides of the gate structure, removing at least a portion of the semiconductor alloy layer overlying the source and drain regions, and forming a metal silicide region over the source and drain regions.
Abstract: A semiconductor device is provided. The semiconductor device comprises a substrate, a gate structure, a spacer, a SixGey layer and a SixGey protection layer. The gate structure is deposited on the substrate and the spacer is deposited on the sidewalls of the gate structure. The SixGey layer is deposited in the substrate on both sides of the spacer and extended to a portion beneath part of the spacer. In addition, the top level of the SixGey layer is higher than the surface of the substrate. Moreover, the SixGey protection layer is deposited on the SixGey layer and the SixGey protection layer comprises Six1Gey1, where 0?y1<y.
Abstract: A method and apparatus is presented that provides performance enhancement in a semiconductor device. In one embodiment, a first current region (64, 76, 23), a channel region and a second current region (75, 33, 66) are adjacent each other. The second current region (75, 33, 66) has a content of a first element of an alloy greater than a content of the first element in the first current region (64, 76, 23), wherein the second current region (75, 33, 66) has a content of the first element greater than a content of the first element in the channel region, the alloy further comprises a second element, the first element has a first valence number, and the second element has a second valence number. Furthermore, the sum of the first valence number and the second valence number is eight.
Type:
Grant
Filed:
August 24, 2004
Date of Patent:
January 23, 2007
Assignee:
Freescale Semiconductor, Inc.
Inventors:
Marius K. Orlowski, Vance H. Adams, Chun-Li Liu, Brian A. Winstead
Abstract: The vertical diffusion of dopants from the gate and the bulk material into the channel region, and the lateral diffusion of dopants from the source and drain regions into the channel region resulting from thermal cycling during the fabrication of a MOS transistor is minimized by forming the source and drain regions in a layer of composite material that includes silicon, germanium, and carbon.
Abstract: A structure and method of fabricating a high-mobility semiconductor layer structure and field-effect transistor (MODFET) that includes a high-mobility conducting channel, while at the same time, maintaining counter doping to control deleterious short-channel effects. The MODFET design includes a high-mobility conducting channel layer wherein the method allows the counter doping to be formed using a standard technique such as ion implantation, and further allows the high-mobility channel to be in close proximity to the counter doping without degradation of the mobility.
Type:
Grant
Filed:
October 14, 2003
Date of Patent:
September 27, 2005
Assignee:
International Business Machines Corporation
Inventors:
Jack O. Chu, Steven J. Koester, Qiqing C. Ouyang