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Enhanced thermoelectric properties of Bi2Te3-based micro-nano fibers via thermal drawing and interfacial engineering

Authors :
Min Sun
Guowu Tang
Hanfu Wang
Ting Zhang
Pengyu Zhang
Bin Han
Ming Yang
Hang Zhang
Yicong Chen
Jun Chen
Dongdan Chen
Jiulin Gan
Qi Qian
Zhongmin Yang
Publication Year :
2022
Publisher :
Research Square Platform LLC, 2022.

Abstract

High-performance thermoelectric (TE) materials with great flexibility and stability are urgently needed to efficiently convert heat energy into electrical power. Recently, intrinsically crystalline, mechanically stable, and flexible inorganic TE fibers that show TE properties comparable to their bulk counterparts are of interest to researchers. Despite remarkable progress moving TE fibers towards room-temperature TE conversion, the figure-of-merit value (ZT) and bending stability still need enhancement. Herein, we report interfacial engineering enhanced thermoelectric properties of micro-nano polycrystalline TE fibers fabricated by thermally drawing Bi2Te3-based bulks in a glass-fiber template. The interfacial engineering effect comes from generating stress-induced oriented nanocrystals to increase electrical conductivity and producing strain-distorted interfaces to decrease thermal conductivity. The resulting fibers achieve a 40% higher ZT (~1.4 at 300 K) than their bulk counterparts and show a reversible bending radius of 50 µm, approaching the theoretical elastic limit. This fabrication strategy works for a wide range of inorganic TE materials and benefits the development of fiber-based micro-TE devices.

Details

Database :
OpenAIRE
Accession number :
edsair.doi...........5cd7664ec5f616c5ec1460d4531325b8
Full Text :
https://doi.org/10.21203/rs.3.rs-1309115/v1