Low thermal conductivity in franckeite heterostructures

热电效应 热导率 材料科学 塞贝克系数 异质结 热电材料 堆积 光电子学 凝聚态物理 声子 声子散射 范德瓦尔斯力 纳米技术 复合材料 热力学 化学 物理 核磁共振 有机化学 分子
作者
Jean Spièce,Sara Sangtarash,Marta Mucientes,Aday J. Molina‐Mendoza,Kunal Lulla,Thomas Mueller,Oleg Kolosov,Hatef Sadeghi,Charalambos Evangeli
出处
期刊:Nanoscale [Royal Society of Chemistry]
卷期号:14 (7): 2593-2598 被引量:3
标识
DOI:10.1039/d1nr07889e
摘要

Layered crystals are known to be good candidates for bulk thermoelectric applications as they open new ways to realise highly efficient devices. Two dimensional materials, isolated from layered materials, and their stacking into heterostructures have attracted intense research attention for nanoscale applications due to their high Seebeck coefficient and possibilities to engineer their thermoelectric properties. However, integration to thermoelectric devices is problematic due to their usually high thermal conductivities. Reporting on thermal transport studies between 150 and 300 K, we show that franckeite, a naturally occurring 2D heterostructure, exhibits a very low thermal conductivity which combined with its previously reported high Seebeck coefficient and electrical conductance make it a promising candidate for low dimensional thermoelectric applications. We find cross- and in-plane thermal conductivity values at room temperature of 0.70 and 0.88 W m-1 K-1, respectively, which is one of the lowest values reported today for 2D-materials. Interestingly, a 1.77 nm thick layer of franckeite shows very low thermal conductivity similar to one of the most widely used thermoelectric material Bi2Te3 with the thickness of 10-20 nm. We show that this is due to the low Debye frequency of franckeite and scattering of phonon transport through van der Waals interface between different layers. This observation open new routes for high efficient ultra-thin thermoelectric applications.
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