4.6 Article

Ultra-low thermal conductivity in B2O3 composited SiGe bulk with enhanced thermoelectric performance at medium temperature region

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 10, 期 8, 页码 4120-4130

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ta09198k

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资金

  1. National Key Research and Development Program of China [2017YFE0198000]
  2. National Natural Science Foundation of China [51772056, 51801040 52061009]
  3. Guangxi Natural Science Foundation of China [AD21220056, 2020GXNSFAA159111, AD20159006, 2017GXNSFFA198015]
  4. Nanotechnology Platform Program (Molecule and Material Synthesis) of the Ministry of Education, Culture, Sports, Science and Technology (MEXT), Japan

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By adding nano-second-phase B2O3 into SiGe, the thermal conductivity is reduced and the power factors are enhanced, resulting in a high thermoelectric performance in the medium temperature region. This study provides a new approach to improve the thermoelectric performance of narrow temperature region materials.
Commonly, SiGe is considered as a typical thermoelectric material with a favorable performance in the high temperature region. Here, we report a new strategy through the addition of the nano-second-phase B2O3 into SiGe via ball milling and spark plasma sintering technique, aiming to realize high thermoelectric performance in the medium temperature region. By controlling the amount of B2O3 added to the SiGe matrix, the thermal conductivity is greatly reduced because of the compound effects of the nano-second-phase and beneficial microstructure. Simultaneously, the power factors are also enhanced, resulting in a high ZT of 1.47 of the p-type B2O3/SiGe bulk composite at 873 K. Our ZT values are 116% higher than the typical materials used in radio-isotope thermoelectric generators (RTGs), and show 104% enhancement over the p-type SiGe alloys in the present study. This study opens a new way to widen and improve the thermoelectric performance for narrow temperature region materials, and is especially highly effective for the environmentally friendly SiGe materials.

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