High-Performance Industrial-Grade p-Type (Bi,Sb) 2 Te 3 Thermoelectric Enabled by a Stepwise Optimization Strategy.

Advanced materials (Deerfield Beach, Fla.)(2023)

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摘要
As the sole dominator of the commercial thermoelectric (TE) market, Bi Te -based alloys play an irreplaceable role in Peltier cooling and low-grade waste heat recovery. Herein, to improve the relative low TE efficiency determined by the figure of merit ZT, an effective approach is reported for improving the TE performance of p-type (Bi,Sb) Te by incorporating Ag GeTe and Se. Specifically, the diffused Ag and Ge atoms into the matrix conduce to optimized carrier concentration and enlarge the density-of-states effective mass while the Sb-rich nanoprecipitates generate coherent interfaces with little loss of carrier mobility. The subsequent Se dopants introduce multiple phonon scattering sources and significantly suppress the lattice thermal conductivity while maintaining a decent power factor. Consequently, a high peak ZT of 1.53 at 350 K and a remarkable average ZT of 1.31 (300-500 K) are attained in the Bi Sb Te Se  + 0.10 wt% Ag GeTe sample. Most noteworthily, the size and mass of the optimal sample are enlarged to Ø40 mm-200 g and the constructed 17-couple TE module exhibits an extraordinary conversion efficiency of 6.3% at ΔT = 245 K. This work demonstrates a facile method to develop high-performance and industrial-grade (Bi,Sb) Te -based alloys, which paves a strong way for further practical applications.
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关键词
(Bi,Sb) 2Te 3,high performance,industrial grade,microstructural modulation,thermoelectric modules
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