» Articles » PMID: 34514239

Low Thermal Conductivity and Magneto-suppressed Thermal Transport in a Highly Oriented FeSb Single Crystal

Overview
Journal ACS Omega
Specialty Chemistry
Date 2021 Sep 13
PMID 34514239
Authors
Affiliations
Soon will be listed here.
Abstract

Thermoelectric materials have been widely explored for the potential applications in power generation and refrigeration fields. High thermal conductivity (∼500 W/m K) of single-crystal FeSb limits the application in cryogenic cooling. In this work, the FeSb single crystal has been synthesized by the self-flux method. The rocking curve results reveal that the single crystal possesses quite high crystallinity. The micromorphology image shows that the single crystal is pyknotic without observable pores or cracks. Surprisingly, the thermal conductivity is reduced by 2 orders of magnitude compared with the previous reports, which can be attributed to the enhanced phonon scattering by the defects and impurities. Furthermore, the magnetic field can further suppress the thermal transport by reducing the phonon mean-free path. The maximum suppression rate of the thermal conductivity reaches 14% at 60 K when the magnetic field varies from 0 to 9 T. In this work, we have prepared the FeSb single crystal with low thermal conductivity, and the magneto-suppressed thermal transport strategy can be applied to other thermoelectric materials.

References
1.
Su X, Wei P, Li H, Liu W, Yan Y, Li P . Multi-Scale Microstructural Thermoelectric Materials: Transport Behavior, Non-Equilibrium Preparation, and Applications. Adv Mater. 2017; 29(20). DOI: 10.1002/adma.201602013. View

2.
Pei Y, Shi X, LaLonde A, Wang H, Chen L, Snyder G . Convergence of electronic bands for high performance bulk thermoelectrics. Nature. 2011; 473(7345):66-9. DOI: 10.1038/nature09996. View

3.
Kieslich G, Birkel C, Veremchuk I, Grin Y, Tremel W . Thermoelectric properties of spark-plasma sintered nanoparticular FeSb2 prepared via a solution chemistry approach. Dalton Trans. 2013; 43(2):558-62. DOI: 10.1039/c3dt51535d. View

4.
Mao J, Zhu H, Ding Z, Liu Z, Gamage G, Chen G . High thermoelectric cooling performance of n-type MgBi-based materials. Science. 2019; 365(6452):495-498. DOI: 10.1126/science.aax7792. View

5.
Snyder G, Toberer E . Complex thermoelectric materials. Nat Mater. 2008; 7(2):105-14. DOI: 10.1038/nmat2090. View