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High Thermoelectric Performance in Sulfide‐Type Argyrodites Compound Ag 8 Sn(S 1− x Se x ) 6 Enabled by Ultralow Lattice Thermal Conductivity and Extended Cubic Phase Regime
Author(s) -
Shen Xingchen,
Xia Yi,
Yang ChunChuen,
Zhang Zhao,
Li Shulong,
Tung YungHsiang,
Benton Allen,
Zhang Xiao,
Lu Xu,
Wang Guoyu,
He Jian,
Zhou Xiaoyuan
Publication year - 2020
Publication title -
advanced functional materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.069
H-Index - 322
eISSN - 1616-3028
pISSN - 1616-301X
DOI - 10.1002/adfm.202000526
Subject(s) - materials science , thermoelectric effect , telluride , orthorhombic crystal system , ionic bonding , selenide , crystal structure , atmospheric temperature range , crystallography , analytical chemistry (journal) , doping , phase transition , ion , condensed matter physics , selenium , thermodynamics , chemistry , optoelectronics , metallurgy , physics , organic chemistry , chromatography
Argyrodites with a general chemical formula of A 8 BC 6 are known for complex phase transitions, ultralow lattice thermal conductivity, and mixed electronic and ionic conduction. The coexistence of ionic conduction and promising thermoelectric performance have recently been reported in selenide and telluride argyrodites, but scarcely in sulfide argyrodites. Here, the thermoelectric properties of Ag 8 Sn(S 1− x Se x ) 6 are reported. Specifically, Ag 8 SnS 6 exhibits intrinsically ultralow lattice thermal conductivities of 0.61–0.31 W m −1 K −1 over the whole temperature range from 32 to 773 K due to distorted local crystal structure, relatively weak chemical bonding, rattler‐like Ag atoms, low‐lying optical modes, and dynamic disorder of Ag ions at high temperatures. Se doping shifts the orthorhombic–cubic phase transition from 457 K at x = 0 to 430 K at x = 0.10, thereby expanding the temperature range of the thermoelectrically favored cubic phase. A figure of merit zT value ≈ 0.80 is achieved at 773 K in Ag 8 Sn(S 1− x Se x ) 6 ( x = 0.03), the highest zT value reported in sulfide argyrodites. These results fill a knowledge gap of the thermoelectric study of argyrodites and contribute to a comprehensive understanding of the chemical bonding, lattice dynamics, and thermal transport of argyrodites.

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