Synergistically enhanced thermoelectric and mechanical performance of Bi2Te3 via industrial scalable hot extrusion method for cooling and power generation applications

Author:

Lu Tianbo,Wang Boyi,Li Guodong,Yang Jiawei,Zhang Xiaofan,Chen Nan,Liu Te-Huan,Yang Ronggui,Niu Pingjuan,Kan Zongxiang,Zhu Hangtian,Zhao Huaizhou

Funder

National Natural Science Foundation of China

Publisher

Elsevier BV

Subject

Physics and Astronomy (miscellaneous),Energy (miscellaneous),General Materials Science

Reference67 articles.

1. A robust thermoelectric module based on MgAgSb/Mg3(Sb,Bi)2 with a conversion efficiency of 8.5% and a maximum cooling of 72 K;Ying;Energy Environ. Sci.,2022

2. Large-scale SHS based 3D printing of high-performance n-type BiTeSe: comprehensive development from materials to modules;Zhan;Mater. Today Phys.,2022

3. Direct ink writing of high-performance Bi2Te3-based thermoelectric materials using quasi-inorganic inks and interface engineering;Wang;J. Mater. Chem. A.,2022

4. Antisite defect manipulation enables the high thermoelectric performance of p-type Bi2-xSbxTe3 alloys for solid-state refrigeration;Shan Li;Mater. Today Phys.,2022

5. Highly efficient thermoelectric air conditioner with kilo-Watt capacity realized by ground source heat exchanging system;Liu;iScience,2022

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