IP Library Granted Patent US 10,665,611
Granted Patent B2
US 10,665,611 · App. 15/610,796 · Granted May 26, 2020

Metal oxide and field-effect transistor

Inventor: Shunpei Yamazaki (Setagaya, JP)
Assignee: Semiconductor Energy Laboratory Co., Ltd.
H01L27/1225H01L29/0665H01L29/66969H01L29/7869H01L29/78648H01L29/78696
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Quick Facts
Patent No.
US 10,665,611
App. No.
15/610,796
Granted
May 26, 2020
Kind
B2
Abstract

To provide a novel material. In a field-effect transistor including a metal oxide, a channel formation region of the transistor includes a material having at least two different energy band widths. The material includes nano-size particles each with a size of greater than or equal to 0.5 nm and less than or equal to 10 nm. The nano-size particles are dispersed or distributed in a mosaic pattern.

Claims (39)

1. A field-effect transistor comprising a metal oxide,

wherein a channel formation region of the transistor comprises a material having at least two different energy band widths,

wherein the material comprises nano-size particles each with a size of greater than or equal to 0.5 nm and less than or equal to 10 nm,

wherein a first nano-size particle of the nano-size particles comprises In,

wherein a second nano-size particle of the nano-size particles comprises Ga, and

wherein the nano-size particles are dispersed or distributed in a mosaic pattern.

2. A field-effect transistor comprising a metal oxide,

wherein a channel formation region of the transistor comprises a material having at least two different energy band widths,

wherein the material comprises nano-size particles each with a size of greater than or equal to 0.5 nm and less than or equal to 10 nm,

wherein a first nano-size particle of the nano-size particles comprises In,

wherein a second nano-size particle of the nano-size particles comprises Ga,

wherein the nano-size particles are dispersed or distributed in a mosaic pattern, and

wherein the channel formation region comprises a path through which carriers easily flow from a source of the transistor to a drain of the transistor.

3. A field-effect transistor comprising a metal oxide,

wherein a channel formation region of the transistor comprises a material having at least two different energy band widths,

wherein the material comprises nano-size particles each with a size of greater than or equal to 0.5 nm and less than or equal to 10 nm,

wherein a first nano-size particle of the nano-size particles comprises In,

wherein a second nano-size particle of the nano-size particles comprises Ga, and

wherein the nano-size particles are dispersed or distributed in a mosaic pattern,

wherein in the case where a gate voltage is applied to the transistor in a forward direction, the material having at least two different energy band widths each has a first function of allowing carriers to flow from a source of the transistor to a drain of the transistor, and

wherein in the case where a gate voltage is applied to the transistor in a reverse direction, the material having at least two different energy band widths each has a second function of suppressing carriers from flowing from the source to the drain.

4. The field-effect transistor according to claim 3 , wherein the nano-size particles comprise a region where their surroundings are blurred and overlap with each other.

5. The field-effect transistor according to claim 3 ,

wherein the first function makes the material having at least two different energy band widths each narrower than an energy band width in the case where the gate voltage is held at 0 V, and

wherein the second function makes the material having at least two different energy band widths each wider than an energy band width in the case where the gate voltage is held at 0 V.

6. The field-effect transistor according to claim 5 , wherein the nano-size particles comprise a region where their surroundings are blurred and overlap with each other.

7. A field-effect transistor comprising:

a channel formation region comprising a metal oxide, the metal oxide comprising a first region and a second region,

wherein the first region comprises indium, gallium, and zinc,

wherein the second region comprises indium, gallium, and zinc,

wherein the number of gallium atom in the first region is larger than the number of gallium atom in the second region, and

wherein each of a size of the first region and a size of the second region in energy dispersive X-ray spectroscopy (EDX) mapping image is greater than or equal to 0.5 nm and less than or equal to 3 nm.

8. A field-effect transistor comprising:

a channel formation region comprising a metal oxide, the metal oxide comprising a first region and a second region,

wherein the first region comprises indium, gallium, and zinc,

wherein the second region comprises indium, gallium, and zinc,

wherein the number of gallium atom in the first region is larger than the number of gallium atom in the second region,

wherein the number of indium atom in the first region is smaller than the number of indium atom in the second region, and

wherein each of a size of the first region and a size of the second region in energy dispersive X-ray spectroscopy (EDX) mapping image is greater than or equal to 0.5 nm and less than or equal to 3 nm.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 15, 2017
From: YAMAZAKI, SHUNPEI
To: SEMICONDUCTOR ENERGY LABORATORY CO., LTD.
Reel/Frame 042716/0793 →
Priority Claims (8)
JP 2016-111984 · Jun 3, 2016 · national
JP 2016-125756 · Jun 24, 2016 · national
JP 2016-126116 · Jun 25, 2016 · national
JP 2016-135510 · Jul 7, 2016 · national
JP 2016-151723 · Aug 2, 2016 · national
JP 2016-155888 · Aug 8, 2016 · national
JP 2016-184961 · Sep 22, 2016 · national
JP 2016-189426 · Sep 28, 2016 · national
Continuity (1)
Related Publication 20170352690A1 · Dec 7, 2017