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

Hao Wu1, Xiao-Lei Shi2, Yuanqing Mao2

  • 1State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing, 211816, China.

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Summary

This study introduces Sn-doping to create a flexible silver sulfide (Ag2S) thermoelectric material. The novel biphasic structure enhances thermoelectric performance while maintaining excellent ductility for waste heat harvesting.

Keywords:
Ag2SSn‐dopinginterfacethermal conductivitythermoelectric

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Area of Science:

  • Materials Science
  • Solid State Physics
  • Nanotechnology

Background:

  • Silver sulfide (Ag2S) is a promising flexible thermoelectric material due to its ductility.
  • Current methods to enhance Ag2S thermoelectric performance often reduce its flexibility.
  • Efficient waste heat harvesting requires materials with both high thermoelectric performance and mechanical flexibility.

Purpose of the Study:

  • To develop a novel Sn-doping strategy for Ag2S to simultaneously improve thermoelectric properties and retain ductility.
  • To investigate the effect of Sn-doping induced biphasic structuring on electron and phonon transport.
  • To fabricate and evaluate a flexible thermoelectric device based on the optimized material.

Main Methods:

  • Incorporation of Sn-doping into Ag2S0.7Se0.3 to create a biphasic structure: (Ag, Sn)2S0.7Se0.3 and Ag2S0.7Se0.3.
  • Characterization of the biphasic material's structural, electrical, and thermal transport properties.
  • Fabrication of a four-leg in-plane flexible thermoelectric device.

Main Results:

  • Achieved a figure-of-merit (ZT) of 0.42 at 343 K with over 90% ductility.
  • Optimized power factor reached 5 µW cm⁻² K⁻² at 343 K due to enhanced carrier concentration and mobility.
  • Suppressed lattice thermal conductivity to 0.18 W m⁻¹ K⁻¹ via biphasic structure-induced defects.
  • Fabricated flexible device demonstrated a maximum power density of ≈49 µW cm⁻² at ΔT = 30 K.

Conclusions:

  • Sn-doping induced biphasic structuring is an effective strategy for synergistic control of electron and phonon transport in Ag2S-based thermoelectrics.
  • The developed material offers a superior combination of thermoelectric performance and mechanical flexibility compared to existing options.
  • This advancement paves the way for efficient flexible thermoelectric devices for waste heat recovery applications.