Issue 38, 2019

Ternary metal selenide/MWCNT/PANI: potential n-type nanohybrids for room-temperature thermoelectric applications

Abstract

Lead-free novel n-type ternary nanohybrids were fabricated by blending separately synthesized, diamond like I–III–VI2 and I–V–VI2 (I-Cu, Ag, III-In, V-Sb, VI-Se) nanocrystals (NCs) in a multi-walled carbon nanotube (MWCNT) and polyaniline (PANI) matrix. A thermoelectric study of these nanohybrids was performed at room temperature in order to understand their utility as potential thermoelectric materials for advanced applications. Electrical conductivity, thermal conductivity and Seebeck coefficient were measured and the thermoelectric performance was evaluated at room temperature. All ternary nanohybrids revealed an n-type behavior with relatively higher electrical conductivity in the order of 103 S m−1. Among the CuInSe2 (CIS), AgInSe2 (AIS) and CuSbSe2 (CSS)-based hybrids, chalcostilbite (i.e., CSS/MWCNT/PANI) showed a good performance at room temperature with a power factor of 1.16 μW m−1 K−2 and Seebeck coefficient of −23.5 μV K−1. A possible mechanism of the charge transport for the ternary hybrid was also discussed. The present article highlights the potentiality of different lead-free ternary metal selenide NPs in hybrid forms for thermoelectric applications.

Graphical abstract: Ternary metal selenide/MWCNT/PANI: potential n-type nanohybrids for room-temperature thermoelectric applications

Article information

Article type
Paper
Submitted
26 May 2019
Accepted
03 Sep 2019
First published
03 Sep 2019

Dalton Trans., 2019,48, 14497-14504

Ternary metal selenide/MWCNT/PANI: potential n-type nanohybrids for room-temperature thermoelectric applications

A. S. Kshirsagar, P. V. More, A. Dey and P. K. Khanna, Dalton Trans., 2019, 48, 14497 DOI: 10.1039/C9DT02225B

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