Sn-Doping-Induced Biphasic Structure Advances Ductile Ag2S-Based Thermoelectrics

Hao Wu, Xiao Lei Shi, Yuanqing Mao, Meng Li, Ting Wu, De Zhuang Wang, Liang Cao Yin, Ming Zhu, Wei Di Liu, Lijun Wang, Yifeng Wang, Jingui Duan, Qingfeng Liu, Zhi Gang Chen

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Due to its inherent ductility, Ag2S shows promise as a flexible thermoelectric material for harnessing waste heat from diverse sources. However, its thermoelectric performance remains subpar, and existing enhancement strategies often compromise its ductility. In this study, a novel Sn-doping-induced biphasic structuring approach is introduced to synergistically control electron and phonon transport. Specifically, Sn-doping is incorporated into Ag2S0.7Se0.3 to form a biphasic composition comprising (Ag, Sn)2S0.7Se0.3 as the primary phase and Ag2S0.7Se0.3 as the secondary phase. This biphasic configuration achieves a competitive figure-of-merit ZT of 0.42 at 343 K while retaining exceptional ductility, exceeding 90%. The dominant (Ag, Sn)2S0.7Se0.3 phase bolsters the initially low carrier concentration, with interfacial boundaries between the phases effectively mitigating carrier scattering and promoting carrier mobility. Consequently, the optimized power factor reaches 5 µW cm−1 K−2 at 343 K. Additionally, the formation of the biphasic structure induces diverse micro/nano defects, suppressing lattice thermal conductivity to a commendable 0.18 W m−1 K−1, thereby achieving optimized thermoelectric performance. As a result, a four-leg in-plane flexible thermoelectric device is fabricated, exhibiting a maximum power density of ≈49 µW cm−2 under the temperature difference of 30 K, much higher than that of organic-based flexible thermoelectric devices.

Original languageEnglish
Article number2408374
JournalAdvanced Science
Volume11
Issue number43
DOIs
StatePublished - 20 Nov 2024

Keywords

  • AgS
  • interface
  • Sn-doping
  • thermal conductivity
  • thermoelectric

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