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research article

Thermodynamics of organic electrochemical transistors

Cucchi, Matteo  
•
Weissbach, Anton
•
Bongartz, Lukas M.
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August 3, 2022
Nature Communications

Though models describing the operating mechanism of organic electrochemical transistors (OECTs) have been developed, these models are unable to accurately reproduce OECT electrical characteristics. Here, the authors report a thermodynamic-based framework that accurately models OECT operation.

Despite their increasing usefulness in a wide variety of applications, organic electrochemical transistors still lack a comprehensive and unifying physical framework able to describe the current-voltage characteristics and the polymer/electrolyte interactions simultaneously. Building upon thermodynamic axioms, we present a quantitative analysis of the operation of organic electrochemical transistors. We reveal that the entropy of mixing is the main driving force behind the redox mechanism that rules the transfer properties of such devices in electrolytic environments. In the light of these findings, we show that traditional models used for organic electrochemical transistors, based on the theory of field-effect transistors, fall short as they treat the active material as a simple capacitor while ignoring the material properties and energetic interactions. Finally, by analyzing a large spectrum of solvents and device regimes, we quantify the entropic and enthalpic contributions and put forward an approach for targeted material design and device applications.

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Type
research article
DOI
10.1038/s41467-022-32182-7
Web of Science ID

WOS:000835788400008

Author(s)
Cucchi, Matteo  
Weissbach, Anton
Bongartz, Lukas M.
Kantelberg, Richard
Tseng, Hsin
Kleemann, Hans
Leo, Karl
Date Issued

2022-08-03

Publisher

Nature Portfolio

Published in
Nature Communications
Volume

13

Issue

1

Article Number

4514

Subjects

Multidisciplinary Sciences

•

Science & Technology - Other Topics

•

device

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LSBI  
Available on Infoscience
August 15, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/189971
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