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Ag-Substituted Nanocrystal Building Blocks for Enhanced Thermoelectric Performance in Earth-Abundant Cu12Sb4S13
Yihan Wu1, Shanhong Wan1, Shanshan Xiao1
1Anhui Province Engineering Research Center of Flexible and Intelligent Materials, School of Chemistry and Chemical Engineering, Hefei University of Technology, Hefei 230009, China.
Abstract:
Earth-abundant tetrahedrite Cu12Sb4S13 is a promising p-type thermoelectric (TE) material owing to its intrinsically low lattice thermal conductivity, yet its performance remains limited by insufficient electrical transport and the persistent trade-off between charge and phonon transport. In this study, we present a colloidal route for the scalable synthesis of Ag-substituted Cu12Sb4S13 nanocrystals and use these nanocrystal building blocks to construct bulk tetrahedrite TE materials with improved transport balance. Ag incorporation preserves the tetrahedrite framework while inducing lattice expansion, increased microstrain, local bond softening, and enhanced structural disorder, which can be retained to a meaningful extent after densification. These structural perturbations are accompanied by a marked enhancement in electrical conductivity and weighted mobility, together with a substantial suppression of lattice thermal conductivity. The optimally substituted Cu11.92Ag0.08Sb4S13 sample exhibits the best overall transport performance, reaching a lattice thermal conductivity of 0.30 W m-1 K-1 and a maximum zTmax of 1.23 at 690 K, representing an approximately 1.8-fold improvement over pristine Cu12Sb4S13, as well as competitive theoretical conversion efficiency and slightly improved hardness. These results highlight Ag-substituted nanocrystals as effective building blocks for improving the TE performance of earth-abundant tetrahedrites through coordinated control of structure and transport.
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