TY - JOUR
T1 - Promoting p-Type PbS as Efficient Candidates for Thermoelectric Cooling and Power Generation
AU - Liu, Suyao
AU - Bai, Shulin
AU - Gao, Tian
AU - Liu, Dongrui
AU - Tian, Yu
AU - Li, Yichen
AU - Peng, Jiayi
AU - Gao, Dezheng
AU - Wang, Siqi
AU - Su, Lizhong
AU - Qin, Bingchao
AU - Zhao, Li Dong
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2026/2/5
Y1 - 2026/2/5
N2 - Thermoelectric technology holds strategic significance in industrial residual heat recovery and solid-state cooling. Nonetheless, the broad implementation of the mainstream Bi2Te3-based materials is hindered by tellurium's (Te) low abundance and high expenses. Herein, an economical and abundant p-type lead sulfide (PbS) compound exhibiting remarkable thermoelectric properties is developed. By utilizing a stepwise strategy involving lattice plainification, trace elemental doping, and band engineering, the optimal p-type polycrystal PbS exhibits a maximum ZT value of ≈1.0 at 823 K, while the crystal sample prepared via a temperature gradient method attains an unprecedented room-temperature ZT > 0.4. A novel thermoelectric cooling device is then fabricated utilizing p-type PbS crystal coupled with n-type Bi2(Te,Se)3, which demonstrates a maximum cooling temperature difference ∆Tmax of ≈52.0 K under a hot-side temperature of 343 K. Furthermore, an all-PbS-based segmented single-leg device is constructed integrating low-temperature crystal with high-temperature polycrystal. This device exhibits an average ZT of ≈0.7 across a wide temperature range (300–823 K). When subjected to a 400 K temperature gradient (ΔT), it achieves a peak efficiency of ≈8.4%. Such advancements highlight the immense potential of PbS thermoelectrics in room-temperature cooling as well as mid-temperature power generation.
AB - Thermoelectric technology holds strategic significance in industrial residual heat recovery and solid-state cooling. Nonetheless, the broad implementation of the mainstream Bi2Te3-based materials is hindered by tellurium's (Te) low abundance and high expenses. Herein, an economical and abundant p-type lead sulfide (PbS) compound exhibiting remarkable thermoelectric properties is developed. By utilizing a stepwise strategy involving lattice plainification, trace elemental doping, and band engineering, the optimal p-type polycrystal PbS exhibits a maximum ZT value of ≈1.0 at 823 K, while the crystal sample prepared via a temperature gradient method attains an unprecedented room-temperature ZT > 0.4. A novel thermoelectric cooling device is then fabricated utilizing p-type PbS crystal coupled with n-type Bi2(Te,Se)3, which demonstrates a maximum cooling temperature difference ∆Tmax of ≈52.0 K under a hot-side temperature of 343 K. Furthermore, an all-PbS-based segmented single-leg device is constructed integrating low-temperature crystal with high-temperature polycrystal. This device exhibits an average ZT of ≈0.7 across a wide temperature range (300–823 K). When subjected to a 400 K temperature gradient (ΔT), it achieves a peak efficiency of ≈8.4%. Such advancements highlight the immense potential of PbS thermoelectrics in room-temperature cooling as well as mid-temperature power generation.
KW - lattice plainification
KW - p-type PbS
KW - power generation
KW - thermoelectric
KW - thermoelectric cooling
UR - https://www.scopus.com/pages/publications/105015309462
U2 - 10.1002/adfm.202516306
DO - 10.1002/adfm.202516306
M3 - 文章
AN - SCOPUS:105015309462
SN - 1616-301X
VL - 36
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 11
M1 - e16306
ER -