Issue 2, 2017

A solution-processed TiS2/organic hybrid superlattice film towards flexible thermoelectric devices

Abstract

Liquid-exfoliation has proven to be a scalable and versatile technique to produce high-yield two-dimensional nanosheets in graphene, BN, layered perovskites and transition metal dichalcogenides. This also provides new insights into the construction of novel nanoelectronics and nanophotonics through the assembly of nanosheets. Here we present a simple exfoliation-and-reassembly approach to produce a flexible n-type TiS2/organic hybrid film for low-temperature thermoelectric applications. The obtained film shows a superlattice structure with alternative layers of TiS2 and organic molecules. Charge transfer occurs when TiS2 and organic molecules form intercalation complexes, which gives rise to a high electrical conductivity but a low Seebeck coefficient. However, the power factor can be further enhanced by annealing the film under vacuum, and the value reaches 210 μW m−1 K−2 at room temperature in this study. Our flexible thermoelectric device can generate a high power density of 2.5 W m−2 at a temperature gradient of 70 K, which hits a new record among organic-based thermoelectric devices.

Graphical abstract: A solution-processed TiS2/organic hybrid superlattice film towards flexible thermoelectric devices

Supplementary files

Article information

Article type
Paper
Submitted
12 Oct 2016
Accepted
10 Nov 2016
First published
10 Nov 2016

J. Mater. Chem. A, 2017,5, 564-570

A solution-processed TiS2/organic hybrid superlattice film towards flexible thermoelectric devices

R. Tian, C. Wan, Y. Wang, Q. Wei, T. Ishida, A. Yamamoto, A. Tsuruta, W. Shin, S. Li and K. Koumoto, J. Mater. Chem. A, 2017, 5, 564 DOI: 10.1039/C6TA08838D

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