Issue 36, 2021

Interfacial architecting with anion treatment for enhanced thermoelectric power of flexible ternary polymer nanocomposites

Abstract

Organic polymer thermoelectrics (TEs) that can realize direct heat-to-electricity conversion hold great potential in flexible and wearable applications and thus are receiving tremendous attention. Constructing polymer-based nanocomposites represents an effective approach in achieving high TE performance, while current studies on the underlying mechanisms for the improvement of TE properties in aspects of interfacial nanostructures are insufficient. In this work, flexible ternary nanocomposite films with unique interfacial architectures are developed by sequential electrochemical polymerization of conducting polymers and subsequent anion treatment. The optimized interfacial architectures contribute to enhanced π electron conjugation, which facilitates interfacial charge transfer and favours large-area charge transport. The anion treatment further enables the molecular chains to arrange in a more ordered configuration, leading to improved carrier mobility. As a result, the nanocomposites exhibit high power factors of more than 500 μW m−1 K−2 that outperform most of the literature-reported peer composites. The feasible interfacial architecting and anion treatment methods proposed in this study demonstrate high potential in designing high-performance TE nanocomposites.

Graphical abstract: Interfacial architecting with anion treatment for enhanced thermoelectric power of flexible ternary polymer nanocomposites

Supplementary files

Article information

Article type
Paper
Submitted
03 Jun 2021
Accepted
31 Jul 2021
First published
02 Aug 2021

J. Mater. Chem. A, 2021,9, 20544-20552

Interfacial architecting with anion treatment for enhanced thermoelectric power of flexible ternary polymer nanocomposites

J. Zhou, P. Peng, Z. Li, L. Liang, X. Huang, H. Lv, Z. Liu and G. Chen, J. Mater. Chem. A, 2021, 9, 20544 DOI: 10.1039/D1TA04698E

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