IP Library › Granted Patent US 9,711,615
Granted Patent B2
US 9,711,615 · App. 15/222,039 · Granted Jul 18, 2017

Multichannel devices with improved performance and methods of making the same

Inventors: Bettina A. Nechay (Lairei, MD); Shalini Gupta (Falls Church, VA); Matthew Russell King (Linthicum, MD); Eric J. Stewart (Silver Spring, MD); Robert S. Howell (Silver Spring, MD); Justin Andrew Parke (Ellicott City, MD); Harlan Carl Cramer (Columbia, MD); Howell George Henry (Ellicott City, MD); Ronald G. Freitag (Catonsville, MD); Karen Marie Renaldo (Pasadena, MD)
Assignee: Northrop Grumman Systems Corporation
H01L29/66462H01L21/3065H01L29/1029H01L29/1058H01L29/205H01L29/66431H01L29/7783H01L29/0657H01L29/2003
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Quick Facts
Patent No.
US 9,711,615
App. No.
15/222,039
Granted
Jul 18, 2017
Kind
B2
Abstract

A transistor device is provided that comprises a base structure, and a superlattice structure overlying the base structure and comprising a multichannel ridge having sloping sidewalls. The multichannel ridge comprises a plurality of heterostructures that each form a channel of the multichannel ridge, wherein a parameter of at least one of the heterostructures is varied relative to other heterostructures of the plurality of heterostructures. The transistor device further comprises a three-sided gate contact that wraps around and substantially surrounds the top and sides of the multichannel ridge along at least a portion of its depth.

Claims (9)

1. A method of forming a transistor device, the method comprising:

forming a superlattice structure comprising a plurality of heterostructures over a base structure by sequentially depositing each layer of the plurality of heterostructures over the base structure with one layer of each heterostructure being doped;

etching away openings in the superlattice structure over a channel region to form a castellated region in the channel region of alternating multichannel ridges with edges and nonchannel openings, wherein a parameter of at least one of corresponding parallel heterostructures of each of the alternating multichannel ridges is varied; and

performing a gate contact fill process to form a gate contact that wraps around and substantially surrounds the top and sides of each the alternating multichannel ridges along at least a portion of its depth and connects each one of the alternating multichannel ridges to one another through the non-channel openings.

2. The method of claim 1 , wherein the parameter is a dopant concentration.

3. The method of claim 1 , wherein the parameter is a dopant concentration for each heterostructure, such that longer width channels associated with a given heterostructure are doped with less dopant concentration than shorter width channels associated with a given heterostructure for each of the plurality of heterostructures to substantially equalize the pinch-off voltage of each channel of the SLCFET during operation.

4. The method of claim 1 , wherein the parameter is a thickness.

5. The method of claim 1 , wherein the parameter is a thickness, such that each inner heterostructure is formed with a greater thickness than a thickness of at least one of a top heterostructure and a bottom heterostructure for each of the alternating multichannel ridges.

6. The method of claim 1 , wherein the parameter is a thickness, such that every other inner heterostructure is formed with a greater thickness than a thickness of at least one of a top heterostructure and a bottom heterostructure for each of the alternating multichannel ridges.

Continuity (2)
Division 14533752 · Nov 5, 2014
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