Spiece Jean, Sangtarash Sara, Mucientes Marta, Molina-Mendoza Aday J, Lulla Kunal, Mueller Thomas, Kolosov Oleg, Sadeghi Hatef, Evangeli Charalambos
Physics Department, Lancaster University, Lancaster LA1 4YW, UK.
Device Modelling Group, School of Engineering, University of Warwick, CV4 7AL Coventry, UK.
Nanoscale. 2022 Feb 17;14(7):2593-2598. doi: 10.1039/d1nr07889e.
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 K, 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 BiTe 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.
层状晶体被认为是体相热电应用的良好候选材料,因为它们为实现高效器件开辟了新途径。从层状材料中分离出来的二维材料及其堆叠成的异质结构,由于其高塞贝克系数以及调控其热电性能的可能性,在纳米尺度应用中引起了广泛的研究关注。然而,由于它们通常具有较高的热导率,将其集成到热电设备中存在问题。在报道150至300 K之间的热输运研究时,我们表明,天然存在的二维异质结构方硒镍矿表现出非常低的热导率,再加上其先前报道的高塞贝克系数和电导率,使其成为低维热电应用的有前景的候选材料。我们发现,方硒镍矿在室温下的横向和平面内热导率值分别为0.70和0.88 W m K,这是目前报道的二维材料中最低的值之一。有趣的是,一层1.77 nm厚的方硒镍矿表现出非常低的热导率,类似于最广泛使用的热电材料之一BiTe(厚度为10 - 20 nm)。我们表明,这是由于方硒镍矿的德拜频率较低以及声子输运通过不同层之间的范德华界面发生散射所致。这一观察结果为高效超薄热电应用开辟了新途径。