Electrically Programmed Doping Gradients Optimize the Thermoelectric Power Factor of a Conjugated Polymer

Author:

Liu Jian12,Craighero Mariavittoria1,Gupta Vandna K.1,Scheunemann Dorothea3,Paleti Sri Harish Kumar1,Järsvall Emmy1,Kim Youngseok1,Xu Kai4,Reparaz Juan Sebastián4,Koster L. Jan Anton5,Campoy‐Quiles Mariano4,Kemerink Martijn3,Martinelli Anna1,Müller Christian1ORCID

Affiliation:

1. Department of Chemistry and Chemical Engineering Chalmers University of Technology Göteborg 41296 Sweden

2. State Key Laboratory of Polymer Physics and Chemistry Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun 130022 China

3. Institute for Molecular Systems Engineering and Advanced Materials Heidelberg University Heidelberg 69120 Germany

4. Materials Science Institute of Barcelona ICMAB‐CSIC Campus UAB Bellaterra 08193 Spain

5. Zernike Institute for Advanced Materials University of Groningen Nijenborgh 4 Groningen NL‐9747 AG The Netherlands

Abstract

AbstractFunctionally graded materials (FGMs) are widely explored in the context of inorganic thermoelectrics, but not yet in organic thermoelectrics. Here, the impact of doping gradients on the thermoelectric properties of a chemically doped conjugated polymer is studied. The in‐plane drift of counterions in moderate electric fields is used to create lateral doping gradients in films composed of a polythiophene with oligoether side chains, doped with 2,3,5,6‐tetrafluoro‐tetracyanoquinodimethane (F4TCNQ). Raman microscopy reveals that a bias voltage of as little as 5 V across a 50 µm wide channel is sufficient to trigger counterion drift, resulting in doping gradients. The effective electrical conductivity of the graded channel decreases with bias voltage, while an overall increase in Seebeck coefficient is observed, yielding an up to eight‐fold enhancement in power factor. Kinetic Monte Carlo simulations of graded films explain the increase in power factor in terms of a roll‐off of the Seebeck coefficient at high electrical conductivities in combination with a mobility decay due to increased Coulomb scattering at high dopant concentrations. Therefore, the FGM concept is found to be a way to improve the thermoelectric performance of not yet optimally doped organic semiconductors, which may ease the screening of new materials as well as the fabrication of devices.

Publisher

Wiley

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