IP Library › Granted Patent US 9,583,637
Granted Patent B2
US 9,583,637 · App. 14/806,108 · Granted Feb 28, 2017

Amorphous oxide and field effect transistor

Inventors: Masafumi Sano (Kanagawa-ken, JP); Katsumi Nakagawa (Kanagawa-ken, JP); Hideo Hosono (Kanagawa-ken, JP); Toshio Kamiya (Kanagawa-ken, JP); Kenji Nomura (Kanagawa-ken, JP)
Assignees: Canon Kabushiki Kaisha; Tokyo Institute of Technology; Japan Science and Technology Agency
H01L29/78693H01L21/02422H01L21/02554H01L21/02565H01L21/02592H01L21/02631H01L21/428H01L29/66969H01L29/7869H01L29/78696
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Quick Facts
Patent No.
US 9,583,637
App. No.
14/806,108
Granted
Feb 28, 2017
Kind
B2
Abstract

A novel amorphous oxide applicable, for example, to an active layer of a TFT is provided. The amorphous oxide comprises microcrystals.

Claims (9)

1. A field effect transistor having an active layer comprising an amorphous oxide film and a gate electrode formed so as to face the active layer through a gate insulator, the amorphous oxide film having an electron carrier concentration of less than 10 18 /cm 3 at a temperature of 25° C., wherein the amorphous oxide film comprises an amorphous oxide comprising In—Ga—Zn—O or In—Ga—Zn—Mg—O, characterized in that the oxide comprises one type of element or a plurality of elements selected from the group consisting of Li, Na, Mn, Ni, Pd, Cu, Cd, C, N, and P.

2. A field effect transistor having an active layer comprising an amorphous oxide film and a gate electrode formed so as to face the active layer through a gate insulator, the amorphous oxide film having an electron carrier concentration of less than 10 18 /cm 3 at a temperature of 25° C., wherein the amorphous oxide film comprises an amorphous oxide comprising In—Ga—Zn—O or In—Ga—Zn—Mg—O, characterized in that the oxide comprises at least one element selected from the group consisting of Ti, Ru, and F.

3. The field effect transistor according to claim 1 or 2 , wherein the electron carrier concentration is less than 10 17 /cm 3 at a temperature of 25° C.

4. The field effect transistor according to claim 1 or 2 , wherein the amorphous oxide is an oxide which exhibits a halo pattern and no characteristic diffraction line in an X-ray diffraction spectrometry.

5. The field effect transistor according to claim 3 , wherein the amorphous oxide is an oxide which exhibits a halo pattern and no characteristic diffraction line in an X-ray diffraction spectrometry.

6. The field effect transistor according to claim 1 or 2 , wherein the amorphous oxide film is obtained by using a target having a composition InGaO 3 (ZnO) m or InGaO 3 (Zn 1-x Mg x O) m in a crystalline state where m is a natural number of less than 6 and x is greater than 0 and not greater than 1.

7. The field effect transistor according to claim 3 , wherein the amorphous oxide film is obtained by using a target having a composition InGaO 3 (ZnO) m or InGaO 3 (Zn 1-x Mg x O) m in a crystalline state where m is a natural number of less than 6 and x is greater than 0 and not greater than 1.

8. The field effect transistor according to claim 4 , wherein the amorphous oxide film is obtained by using a target having a composition InGaO 3 (ZnO) m or InGaO 3 (Zn 1-x Mg x O) m in a crystalline state where m is a natural number of less than 6 and x is greater than 0 and not greater than 1.

9. The field effect transistor according to claim 5 , wherein the amorphous oxide film is obtained by using a target having a composition InGaO 3 (ZnO) m or InGaO 3 (Zn 1-x Mg x O) m in a crystalline state where m is a natural number of less than 6 and x is greater than 0 and not greater than 1.

Priority Claims (1)
JP 2004-326687 · Nov 10, 2004 · national
Continuity (4)
Continuation 13923009 · Jun 20, 2013
Division 12406464 · Mar 18, 2009
Division 11269600 · Nov 9, 2005
Related Publication 20150325707A1 · Nov 12, 2015