Issue 35, 2017

Surface oxidation and thermoelectric properties of indium-doped tin telluride nanowires

Abstract

The recent discovery of excellent thermoelectric properties and topological surface states in SnTe-based compounds has attracted extensive attention in various research areas. Indium doped SnTe is of particular interest because, depending on the doping level, it can either generate resonant states in the bulk valence band leading to enhanced thermoelectric properties, or induce superconductivity that coexists with topological states. Here we report on the vapor deposition of In-doped SnTe nanowires and the study of their surface oxidation and thermoelectric properties. The nanowire growth is assisted by Au catalysts, and their morphologies vary as a function of substrate position and temperature. Transmission electron microscopy characterization reveals the formation of an amorphous surface in single crystalline nanowires. X-ray photoelectron spectroscopy studies suggest that the nanowire surface is composed of In2O3, SnO2, Te and TeO2 which can be readily removed by argon ion sputtering. Exposure of the cleaned nanowires to atmosphere leads to rapid oxidation of the surface within only one minute. Characterization of electrical conductivity σ, thermopower S, and thermal conductivity κ was performed on the same In-doped nanowire which shows suppressed σ and κ but enhanced S yielding an improved thermoelectric figure of merit ZT compared to the undoped SnTe.

Graphical abstract: Surface oxidation and thermoelectric properties of indium-doped tin telluride nanowires

Supplementary files

Article information

Article type
Paper
Submitted
07 Jul 2017
Accepted
02 Aug 2017
First published
08 Aug 2017

Nanoscale, 2017,9, 13014-13024

Surface oxidation and thermoelectric properties of indium-doped tin telluride nanowires

Z. Li, E. Xu, Y. Losovyj, N. Li, A. Chen, B. Swartzentruber, N. Sinitsyn, J. Yoo, Q. Jia and S. Zhang, Nanoscale, 2017, 9, 13014 DOI: 10.1039/C7NR04934J

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