IP Library › Granted Patent US 8,878,176
Granted Patent B2
US 8,878,176 · App. 13/572,269 · Granted Nov 4, 2014

Metal-oxide based thin-film transistors with fluorinated active layer

Inventors: Man Wong (Hong Kong, CN); Hoi Sing Kwok (Hong Kong, CN); Zhi Ye (Hong Kong, CN)
Assignee: The Hong Kong University of Science and Technology
H01L29/7869
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Quick Facts
Patent No.
US 8,878,176
App. No.
13/572,269
Granted
Nov 4, 2014
Kind
B2
Abstract

A thin-film transistor with a fluorinated channel and fluorinated source and drain regions and methods of fabrication are provided. The thin-film transistor includes: a substrate; a semiconductor active layer of fluorine-doped metal-oxide formed on the substrate; fluorine-doped source and drain regions disposed adjacent to the semiconductor active layer; a gate electrode disposed over the semiconductor active layer, configured to induce a continuous conduction channel between the source and drain regions; and a gate dielectric material separating the gate electrode and the channel.

Claims (16)

1. A thin-film transistor, comprising:

a substrate;

a metal oxide semiconductor active layer, the semiconductor active layer comprising source and drain regions doped with non-fluorine donor ions and further doped with fluorine, and a fluorine-doped channel region disposed adjacent to the source and drain regions, wherein the fluorine is not a donor to the source, drain and channel regions and is configured to passivate the source, drain and channel regions with respect to defects in the metal oxide semiconductor active layer to increase mobility;

a gate electrode disposed over the semiconductor active layer, configured to induce a continuous conduction channel in the channel region between the source and drain regions; and

a gate dielectric material separating the gate electrode and the channel region;

wherein the volume concentration of fluorine in the channel region of the semiconductor active layer is between approximately 10 19 and 4×10 20 /cm 3 ; and

wherein the volume concentration of fluorine in the source and drain regions is greater than or equal to approximately 5×10 20 /cm 3 .

2. The thin-film transistor of claim 1 , wherein the material of the source and drain regions is the same metal-oxide semiconductor as the channel region.

3. The thin-film transistor of claim 1 , wherein the material of the source and drain regions is a metal-oxide semiconductor different from the metal-oxide semiconductor of the channel region.

4. The thin-film transistor of claim 1 , wherein the thin-film transistor has at least one of the following configurations: horizontal electrodes, vertical electrodes, coplanar electrodes, staggered electrodes, top-gated, bottom-gated, or double-gated.

5. The thin-film transistor of claim 1 , wherein the semiconductor active layer is at least one of an oxide of zinc, an oxide of tin, an oxide of copper, an oxide of indium, or an oxide of an alloy comprising at least two or more elements from the group consisting of: zinc, tin, indium, gallium, aluminum, titanium, silver, and copper.

6. The thin-film transistor of claim 1 , wherein the semiconductor active layer is in an amorphous, polycrystalline, or single-crystalline state.

7. The thin-film transistor of claim 1 , wherein the thickness of the semiconductor active layer is between approximately 20 nm and 2000 nm.

8. The thin-film transistor of claim 1 , wherein the substrate comprises glass, polymer, insulated stainless steel, amorphous silicon, polycrystalline silicon, or single-crystalline silicon containing pre-fabricated conventional integrated circuits.

9. The thin-film transistor of claim 1 , wherein the substrate is covered with an electrically insulating layer.

10. The thin-film transistor of claim 1 , wherein the gate electrode is made of metal, transparent-conducting oxide, or layer combinations thereof.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 17, 2012
From: WONG, MAN; KWOK, HOI SING; YE, ZHI
To: THE HONG KONG UNIVERSITY OF SCIENCE AND TECHNOLOGY
Reel/Frame 028968/0457 →
Continuity (2)
Provisional Application 61573031 · Aug 11, 2011
Related Publication 20130037798A1 · Feb 14, 2013