Tri‐Acceptor Skeleton Balancing Ambipolar Mixed Ionic‐Electronic Transport in Organic Conductors

J Jiahao Zhao (School of Chemical Sciences) C Chenzhan Wang (School of Chemical Sciences) Y Yaokun Wang (School of Chemical Sciences) W Wei Wen (Key Laboratory of Applied Chemistry of Chongqing Municipality and Chongqing Key Laboratory of Soft-Matter Material Chemistry and Function Manufacturing, School of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, China) C Chenjing Shi (Beijing National Laboratory For Molecular Sciences, Key Laboratory of Organic Solids, Institute of Chemistry Chinese Academy of Sciences Beijing China) Y Yajie Chou (School of Chemical Sciences) C Chenchen Qin (State Key Laboratory of Advanced Environmental Technology, Department of Environmental Science and Engineering) Z Zhenjie Ni (School of Chemical Sciences) H Hanlin Wang Y Yunqi Liu

Abstract

ABSTRACT Organic mixed ionic‐electronic conductors (OMIECs) are emerging materials for low‐power dissipation, high transconductance, and biocompatible semiconductor devices. To date, major efforts have been focused on p‐type OMIECs, while ambipolar and electron‐conducting counterparts remain underdeveloped. This disparity arises from the limited availability of robust conjugated skeletons capable of sustaining electrochemical reduction without compromising the electron transport pathways. In this work, we demonstrate a tri‐acceptor skeleton comprising diketopyrrolopyrrole‐benzothiadiazole‐diketopyrrolopyrrole (DBD) units, which concurrently facilitates electrochemical oxidation and reduction processes. Additionally, we modulate side chain chemistry by halving the density of oligoethylene glycol (OEG) moieties. This two‐dimensional (2D) tuning strategy achieves an optimal balance between ambipolar ionic and electronic transport properties, lowering the injection barrier for cations. hDBD‐2FT exhibits high apparent product of mobility and volumetric capacitance ( µC *), reaching 345.54 and 334.57 F cm −1 V −1 s −1 for p‐type and n‐type conduction, respectively, demonstrating its potential for ambipolar mixed transport. Leveraging its efficient mixed transport, we successfully demonstrate complementary inverters and electrocardiogram monitoring applications. Our findings validate the efficacy of the 2D tuning strategy in balancing mixed transport properties and are anticipated to stimulate the development of OMIECs exhibiting higher performance metrics and power efficiency.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 15, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

J

Jiahao Zhao

School of Chemical Sciences

C

Chenzhan Wang

School of Chemical Sciences

Y

Yaokun Wang

School of Chemical Sciences

W

Wei Wen

Key Laboratory of Applied Chemistry of Chongqing Municipality and Chongqing Key Laboratory of Soft-Matter Material Chemistry and Function Manufacturing, School of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, China

C

Chenjing Shi

Beijing National Laboratory For Molecular Sciences, Key Laboratory of Organic Solids, Institute of Chemistry Chinese Academy of Sciences Beijing China

Y

Yajie Chou

School of Chemical Sciences

C

Chenchen Qin

State Key Laboratory of Advanced Environmental Technology, Department of Environmental Science and Engineering

Z

Zhenjie Ni

School of Chemical Sciences

H

Hanlin Wang

Y

Yunqi Liu