IP Library Granted Patent US 10,886,450
Granted Patent B2
US 10,886,450 · App. 15/996,706 · Granted Jan 5, 2021

Thermoelectric composite material comprising MXene and method for manufacturing the same

Inventors: Jin-Sang Kim (Seoul, KR); Chong-Min Koo (Seoul, KR); Seung-Hyub Baek (Seoul, KR); Seong-Keun Kim (Seoul, KR); Chong-Yun Kang (Seoul, KR); Soon-Man Hong (Seoul, KR); Seung-Sang Hwang (Seoul, KR); Ji-Won Choi (Seoul, KR); Seok-Jin Yoon (Seoul, KR); Kwang-Chon Kim (Seoul, KR); Kyung-Youl Baek (Seoul, KR); Sang-Ho Cho (Seoul, KR)
Assignee: Korea Institute of Science and Technology
H01L35/24C04B35/01C04B35/547C04B35/5607C04B35/5611C04B35/5622C04B35/58007C04B35/58014C04B35/58021C04B35/58028C04B35/58035C04B35/58085C04B35/628C04B35/6264C04B35/62831C04B35/62886C04B35/645H01L35/16H01L35/18H01L35/22C04B2235/3294C04B2235/3298C04B2235/3817C04B2235/3839C04B2235/3843C04B2235/3852C04B2235/3856C04B2235/3886C04B2235/446C04B2235/5292C04B2235/5445C04B2235/666C04B2235/85
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Quick Facts
Patent No.
US 10,886,450
App. No.
15/996,706
Granted
Jan 5, 2021
Kind
B2
Abstract

Disclosed is a thermoelectric composite material includes a thermoelectric material including crystal grains; and a MXene inserted at boundaries of the crystal grains consisting of the thermoelectric material. Accordingly, the thermoelectric composite material may have a reduced thermal conductivity and an increased electrical conductivity. Furthermore, mechanical properties of the thermoelectric composite material may be improved. Thus, the thermoelectric composite material may improve the thermoelectric ability of a thermoelectric module including the same. A method of manufacturing the thermoelectric composite material includes coating MXene on a surface of a thermoelectric material powder including crystal grains; and sintering the thermoelectric material powder coated with the MXene to form a sintered body including the MXene inserted at boundaries of the crystal grains consisting of the thermoelectric material.

Claims (23)

1. A thermoelectric composite material, comprising:

a thermoelectric material comprising crystal grains; and

a MXene inserted at boundaries of the crystal grains consisting of the thermoelectric material.

2. The thermoelectric composite material of claim 1 , wherein the thermoelectric material includes a material selected from the group consisting of a chalcogenide, an antimonide, a silicide, a half-Heusler compound, an oxide, and combinations thereof.

3. The thermoelectric composite material of claim 1 , wherein the thermoelectric material includes a material selected from the group consisting of a Bi—Te compound, a Sb—Te compound, a Bi—Te—Se compound, a Bi—Sb—Te compound, a Bi—Sb—Te—Se compound, and combinations thereof.

4. The thermoelectric composite material of claim 1 , wherein the MXene is an inorganic compound having a two-dimensional shape and is represented by:

M n+1 X n ,

where M represents Ti, Zr, Hf, V, Cr, Mn, Sc, Mo, Nb, Ta or a combination thereof, X represents C, N or a combination thereof, and where n is a natural number of 1 to 3.

5. The thermoelectric composite material of claim 1 , wherein the MXene forms a continuous thin film surrounding the crystal grains.

6. The thermoelectric composite material of claim 1 , wherein the MXene is irregularly disposed along the boundaries of the crystal grains.

7. A method of manufacturing a thermoelectric composite material, the method comprising:

coating MXene on a surface of a thermoelectric material powder comprising crystal grains; and

sintering the thermoelectric material powder coated with the MXene to form a sintered body including the MXene inserted at boundaries of the crystal grains consisting of the thermoelectric material.

8. The method of claim 7 , wherein the thermoelectric material powder includes a material selected from the group consisting of a chalcogenide, an antimonide, a silicide, a half-Heusler compound, an oxide, and combinations thereof.

9. The method of claim 7 , wherein the thermoelectric material powder includes a material selected from the group consisting of a Bi—Te compound, a Sb—Te compound, a Bi—Te—Se compound, a Bi—Sb—Te compound, a Bi—Sb—Te—Se compound, and combinations thereof.

10. The method of claim 7 , wherein the MXene is an inorganic compound having a two-dimensional shape and represented by:

M n+1 X n ,

where M represents Ti, Zr, Hf, V, Cr, Mn, Sc, Mo, Nb, Ta or a combination thereof, X represents C, N or a combination thereof, and n is a natural number of 1 to 3.

11. The method of claim 7 , wherein coating the MXene on the surface of the thermoelectric material powder comprises:

mixing and stirring the thermoelectric material powder, the MXene and a solvent to provide a mixture; and

drying the mixture.

12. The method of claim 11 , wherein the solvent includes an alcohol-based solvent.

13. The method of claim 11 , wherein a content of the MXene is present in an amount ranging from 0.01% by weight to 1% by weight based on total weight of the thermoelectric material powder and the MXene.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 4, 2018
From: KIM, JIN-SANG; KOO, CHONG-MIN; BAEK, SEUNG-HYUB; KIM, SEONG-KEUN; KANG, CHONG-YUN; HONG, SOON-MAN; HWANG, SEUNG-SANG; CHOI, JI-WON; YOON, SEOK-JIN; KIM, KWANG-CHON; BAEK, KYUNG-YOUL; CHO, SANG-HO
To: KOREA INSTITUTE OF SCIENCE AND TECHNOLOGY
Reel/Frame 045974/0551 →
Priority Claims (1)
KR 10-2017-0174387 · Dec 18, 2017 · national
Continuity (1)
Related Publication 20190189884A1 · Jun 20, 2019
Cited By (1)
US 12,296,383