Delayed cation dynamics enables dual-doped organic electrochemical transistors with high current sensitivity

S Sen Zhang B Bingjun Wang N Nicholas Siemons (Department of Materials Science and Engineering, Stanford University, 496 Lomita Mall, Stanford, California 94305, United States) I Iona Anderson S Shijie Wang (Yunnan Key Laboratory of International Rivers and Transboundary Eco-Security/Ministry of Education Key Laboratory for Transboundary Eco-Security of Southwest China, Institute of International Rivers and Eco-Security, Yunnan University) Y Yuxin Kong J Jin-Ting Ye X Xian-Kai Chen M Minning Wang X Xiao Yu C Chi-Yuan Yang Y Yuxiang Li S Simone Fabiano (Laboratory of Organic Electronics, Department of Science and Technology, Linköping University) J Jenny Nelson W Wei Ma

Abstract

Abstract The coupling between ionic and electronic species and their dynamic interplay lay the foundation for organic electrochemical transistors (OECTs) to transduce and amplify bio(chemical) signals through ion-modulated conductivity. However, the operation of most reported OECTs is typically dominated by single ions, e.g. anions for p-type accumulation devices, mainly due to the challenge of regulating ion dynamics to enable both types of ions to play a role during the electrochemical doping process. In this study, we propose that electrochemical doping of an OECT channel can occur via an anion-cation dual-doping mechanism, where cation expulsion and anion injection occur simultaneously. By designing a p-type organic mixed ionic-electronic conductor, Pu2gT, with strong side chain-cation interactions, we successfully decelerate the cation transport dynamics, allowing the dual-doping process to occur. As a result, Pu2gT OECT exhibits improved current sensitivity compared with the anion-dominated counterpart, showing potential in high-quality electrocardiogram signal acquisition and ion concentration discrimination. Furthermore, incorporating crown ether additives into Pu2gT enhances the dual-doping effect by further delaying cation dynamics, leading to even higher device performance. This dual-doping mechanism deepens the understanding of OECT working principles and opens avenues for achieving state-of-the-art bioelectronic devices.

Article Details

Volume / Issue Vol. 17, Issue 1
Published June 01, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

S

Sen Zhang

B

Bingjun Wang

N

Nicholas Siemons

Department of Materials Science and Engineering, Stanford University, 496 Lomita Mall, Stanford, California 94305, United States

I

Iona Anderson

S

Shijie Wang

Yunnan Key Laboratory of International Rivers and Transboundary Eco-Security/Ministry of Education Key Laboratory for Transboundary Eco-Security of Southwest China, Institute of International Rivers and Eco-Security, Yunnan University

Y

Yuxin Kong

J

Jin-Ting Ye

X

Xian-Kai Chen

M

Minning Wang

X

Xiao Yu

C

Chi-Yuan Yang

Y

Yuxiang Li

S

Simone Fabiano

Laboratory of Organic Electronics, Department of Science and Technology, Linköping University

J

Jenny Nelson

W

Wei Ma