Guilmeau E, Maignan A, Wan C, Koumoto K
Laboratoire CRISMAT, UMR 6508 CNRS/ENSICAEN, 6 bd du Maréchal Juin, 14050 CAEN Cedex 4, France.
Phys Chem Chem Phys. 2015 Oct 14;17(38):24541-55. doi: 10.1039/c5cp01795e.
TiS2 based layered sulfides have recently received increasing interest from the thermoelectric community. Due to its layered structure, the TiS2 compound with its enormous capacity for chemical substitution and intercalation offers different means to optimize the thermoelectric response through concomitant tuning of carrier concentration and decrease of the lattice thermal conductivity. In this review, we first discuss and summarize the crystal structures and physical/chemical properties of TiS2 based layered sulfides. Then, the approaches that successfully enhanced the thermoelectric performances in the TiS2 ceramic samples densified by Spark Plasma sintering are outlined, which include intercalation, non-stoichiometry, cationic substitution, and the block layer concept.
基于TiS2的层状硫化物最近受到了热电领域越来越多的关注。由于其层状结构,具有巨大化学取代和嵌入能力的TiS2化合物提供了不同的方法,通过同时调节载流子浓度和降低晶格热导率来优化热电响应。在这篇综述中,我们首先讨论并总结了基于TiS2的层状硫化物的晶体结构和物理/化学性质。然后,概述了在通过放电等离子烧结致密化的TiS2陶瓷样品中成功提高热电性能的方法,包括嵌入、非化学计量比、阳离子取代和块层概念。