Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7993090 | Journal of Alloys and Compounds | 2018 | 28 Pages |
Abstract
Te-free PbS has been regarded as a promising alternative candidate for PbTe thermoelectric materials due to its advances of low-cost, earth-abundant. In this work, we report an enhanced thermoelectric performance in n-type PbS system arising from synergistically optimized carrier and phonon transport properties. The electrical transport properties are optimized by tuning carrier concentrations via Sb doping, resulting in a maximum power factor of â¼16.7 μWcmâ1Kâ2â¯at 623â¯K, which is approximately tenfold higher than that of undoped PbS (â¼1.8 μWcmâ1Kâ2). PbSe and PbTe co-alloying in PbS was carried out to reduce lattice thermal conductivity through introducing point defects scattering and second phase, resulting in a minimum lattice thermal conductivity â¼0.71 Wmâ1Kâ1â¯at 923â¯K. Combined the enhanced power factor with suppressed thermal conductivity, a maximum ZT value â¼1.0 was obtained in n-type (PbS)0.53(PbSe)0.25(PbTe)0.2Sb0.02 at 923â¯K.
Related Topics
Physical Sciences and Engineering
Materials Science
Metals and Alloys
Authors
Minghui Zhao, Cheng Chang, Yu Xiao, Li-Dong Zhao,