Issue 39, 2021

Study of anisotropic thermal conductivity in textured thermoelectric alloys by Raman spectroscopy

Abstract

Polycrystalline p-type Sb1.5Bi0.5Te3 (SBT) and n-type Bi2Te2.7Se0.3 (BTS) compounds possessing layered crystal structure show anisotropic electronic and thermal transport properties. This research is in pursuit of better understanding the anisotropic thermal properties using Raman spectroscopy. A systematic Raman spectroscopic study of the hot-pressed pellet of the textured p-type SBT and n-type BTS is reported in both directions: parallel (‖) and perpendicular (⊥) to the pressing axis as a function of temperature and laser power. The first-order temperature coefficient, optical thermal conductivity, and phonon lifetime are qualitatively determined from the temperature and laser power-dependent frequency and full-width half maximum (FWHM) of Raman peaks (A11g, E2g & A21g). Anisotropy in experimental phonon thermal conductivity in both directions is correlated with the approximated optical thermal conductivity, phonon lifetime and phonon anharmonicity. The anisotropy in phonon anharmonicity in both directions is explained by the modified Klemens–Hart–Aggarwal–Lax phonon decay model. In this study, the symmetric three-phonon scattering process is considered responsible for thermal transport in the temperature range of 300 to 473 K.

Graphical abstract: Study of anisotropic thermal conductivity in textured thermoelectric alloys by Raman spectroscopy

Supplementary files

Article information

Article type
Paper
Submitted
23 Jun 2021
Accepted
02 Jul 2021
First published
13 Jul 2021
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2021,11, 24456-24465

Study of anisotropic thermal conductivity in textured thermoelectric alloys by Raman spectroscopy

R. S. C. Bose and K. Ramesh, RSC Adv., 2021, 11, 24456 DOI: 10.1039/D1RA04886D

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