Issue 23, 2021

PEDOT:Tos electronic and thermoelectric properties: lessons from two polymerization processes

Abstract

In the landscape of π-conjugated polymers, poly(3,4-ethylenedioxythiophene) doped with iron(III) p-toluenesulfonate (PEDOT:Tos) has shown promise as a thermoelectric material for near room temperature applications. Such properties are inherent to its semi-metallic nature when optimally doped leading to high electrical conductivity and a relatively good Seebeck coefficient. Nevertheless, the final thermoelectric properties of PEDOT:Tos are highly influenced by the polymerization pathways and a thorough understanding of the interplay between polymerization processes and thermoelectric properties is needed. Here, PEDOT:Tos thin films with a doping level of 22 ± 2% were produced by in situ polymerization and vapor-phase polymerization and a comparative study was performed in order to investigate the subtle correlations between morphological features and electronic signatures for both types of samples. Accordingly, optimized in situ polymerized PEDOT:Tos films were demonstrated to exhibit higher electrical conductivities (up to 4398 ± 68 S cm−1) and power factors (up to 148 ± 37 μW m−1 K−2), highlighting the importance of the polymerization process on the final thermoelectric properties.

Graphical abstract: PEDOT:Tos electronic and thermoelectric properties: lessons from two polymerization processes

Supplementary files

Article information

Article type
Paper
Submitted
16 Feb 2021
Accepted
13 May 2021
First published
17 May 2021

J. Mater. Chem. C, 2021,9, 7417-7425

PEDOT:Tos electronic and thermoelectric properties: lessons from two polymerization processes

S. Perrot, F. Pawula, S. Pechev, G. Hadziioannou and G. Fleury, J. Mater. Chem. C, 2021, 9, 7417 DOI: 10.1039/D1TC00756D

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