共 63 条
A scalable synthesis route for multiscale defect engineering in the sustainable thermoelectric quaternary sulfide Cu26V2Sn6S32
被引:17
作者:
Guelou, Gabin
[1
]
Couder, Christophe
[1
]
Bourhim, Abdelhamid
[1
]
Lebedev, Oleg, I
[1
]
Daneu, Nina
[2
]
Appert, Florian
[3
]
Juraszek, Jean
[3
]
Lemoine, Pierric
[4
]
Segreto, Lorraine
[5
]
Guilmeau, Emmanuel
[1
]
机构:
[1] Normandie Univ, UNICAEN, ENSICAEN, CRISMAT,CNRS, F-14000 Caen, France
[2] Jozef Stefan Inst, Dept Adv Mat, Jamova Cesta 39, Ljubljana 1000, Slovenia
[3] Univ Rouen, UNIROUEN, INSA Rouen, GPM,CNRS, F-76000 Rouen, France
[4] Univ Rennes, CNRS, UMR 6226, ISCR, F-35000 Rennes, France
[5] Tribotecc GmbH, Ind Str 23, A-9601 Arnoldstein, Austria
来源:
关键词:
Thermoelectric;
Defect engineering;
Sulfide;
Colusite;
Mechanical alloying;
HIGH-TEMPERATURE;
CRYSTAL-STRUCTURE;
RAPID SYNTHESIS;
PERFORMANCE;
COLUSITES;
SUBSTITUTION;
STABILITY;
TERNARY;
PBS;
TA;
D O I:
10.1016/j.actamat.2020.05.039
中图分类号:
T [工业技术];
学科分类号:
08 ;
摘要:
In recent years, thermoelectric materials inspired from the natural mineral colusite have emerged as a new class of environmentally-friendly copper-based sulfides composed of abundant elements. Herein, high performance bulk colusite Cu26V2Sn6S32 materials were synthesized using mechanical alloying and spark plasma sintering of low-cost industrial-grade metal sulfides. This new synthesis route has led to the formation of various types of nano-to-microscale defects, from local Sn-site structural disorder to nano-inclusions and vanadium-rich core-shell microstructures. These multiscale defects have a strong impact over phonon scattering, making it possible to reach ultra-low lattice thermal conductivity. Simultaneously, the electrical transport properties are impacted through variations in charge carrier concentration and effective mass, leading to a synergistical improvement of both electrical and thermal properties. The resulting power factor, over 1 mW m(-1) K-2 above 623 K with an average value of 0.86 mW m(-1) K-2 over the temperature range 300 <= T / K <= 650 K, is the highest reported for a germanium-free colusite to date. Our optimization strategy based on defect engineering in bulk materials is an exciting prospect for new low-cost thermoelectric systems. (C) 2020 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
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页码:229 / 239
页数:11
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