放电等离子烧结
材料科学
热电效应
热导率
热电材料
能量转换效率
兴奋剂
热电发电机
塞贝克系数
热的
光电子学
功勋
电阻率和电导率
烧结
复合数
晶界
复合材料
粒度
等离子体
SPARK(编程语言)
工程物理
过程(计算)
纳米技术
作者
Wajid Hussain,Lei Yang,Ziyang Zhou,Peijie Ma,Hu Hanwen,Kun Zheng
出处
期刊:Nanoscale
[Royal Society of Chemistry]
日期:2026-01-01
摘要
Interface engineering can effectively reduce thermal conductivity in thermoelectric materials, resulting in enhanced thermoelectric performance. However, achieving synergistically optimized thermal and electrical transport properties remains challenging. In this study, MoSe2 was decorated into Ag2Se by a two-step solvothermal/hydrothermal process combined with spark plasma sintering. Spark plasma sintering enables interfacial ion exchange, resulting in reduced carrier concentration and increased Seebeck coefficient. Meanwhile the decorated MoSe2 at the grain boundaries strongly scatters phonons, along with the reduced electrical conductivity, resulting in significantly reduced thermal conductivity. Consequently, the Ag2Se/4mol% MoSe2 composite achieves a notable maximum figure of merit of 1.07 at 390 K and a theoretical maximum conversion efficiency of 2% at a temperature difference of 45 K, indicating that MoSe2 doping substantially improves the thermoelectric characteristics of n-type Ag2Se. This nanostructured interface design approach may be useful for improving the performance of various thermoelectric materials.
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