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High performance and low thermal conductivity in Bi2Se3 induced by the synergistic regulation of a resonant energy level and microstructure prepared by Se slow-release method.

Authors :
Liu, Yaohui
Tang, Yu
Tao, Yonggui
Shen, Lanxian
Ge, Wen
Deng, Shukang
Source :
Applied Physics Letters; 9/25/2023, Vol. 123 Issue 13, p1-6, 6p
Publication Year :
2023

Abstract

In this study, Bi<subscript>2</subscript>Se<subscript>3</subscript> thermoelectric materials with high density, low thermal conductivity, and excellent thermoelectric performance are prepared using a Se slow-release method. It was found that the number of Se defects in the material could be effectively reduced by changing the content of NaCl solvent, and a certain number of Na atoms are introduced into the Bi<subscript>2</subscript>Se<subscript>3</subscript> matrix. The carrier concentration of Bi<subscript>2</subscript>Se<subscript>3</subscript> is greatly optimized due to the synergistic effect of the two, leading to a gradual increase in the Seebeck coefficient from −94 to −122 μV K<superscript>−1</superscript> at room temperature. Simultaneously, we conducted an in-depth investigation into the effects of Na doping and Se vacancies on the electronic structure of the materials. Our findings indicate that the presence of these two defects gives rise to resonance energy levels and sharpens the density of state peaks near the Fermi level. This discovery further underscores the potential for enhancing thermoelectric performance. Finally, the Bi<subscript>2</subscript>Se<subscript>3</subscript>(NaCl)<subscript>10</subscript> sample achieved the maximum ZT value of 0.69 at 550 K, and the average ZT within the temperature detection range reached 0.36, increasing the thermoelectric performance of the material. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00036951
Volume :
123
Issue :
13
Database :
Complementary Index
Journal :
Applied Physics Letters
Publication Type :
Academic Journal
Accession number :
172450270
Full Text :
https://doi.org/10.1063/5.0161757