Photo‐Rewritable Ambipolar Organic Electrochemical Synapses with Bidirectional Optical Plasticity for Adaptive Vision in Aqueous Environments

X Xiaoqian Su (Institute of Flexible Electronics (IFE Future Technologies) Xiamen University Xiamen China) X Xihu Wu (Institute of Flexible Electronics (IFE Future Technologies) Xiamen University Xiamen China) H He Wang W Wenzhe Lu (Institute of Flexible Electronics (IFE Future Technologies) Xiamen University Xiamen China) B Bing Xue J Jinli Tang (Institute of Flexible Electronics (IFE Future Technologies) Xiamen University Xiamen China) Z Zhangshanhao Li K Kejing Ren (Department of Materials Science and Engineering National University of Singapore Singapore Singapore) Q Qiang He J Junyu Li L Lan Yin Y Yuxin Liu S Shiming Zhang T Ting Lei C Changsheng Wu (Department of Materials Science and Engineering, National University of Singapore)

Abstract

ABSTRACT Emulating biological vision requires aqueous‐compatible neuromorphic devices that perform light sensing and complex synaptic dynamics. Organic electrochemical transistors (OECTs), capable of converting ionic signals into electronic current via electrochemical doping, closely mimic biological synaptic signaling. This capability distinguishes them from traditional electronic synapses, which rely purely on electron transport. However, prior OECTs typically require multiple components for bidirectional synaptic potentiation and depression, limiting integration and scalability. Here, we present an ambipolar all‐polymer bulk heterojunction vertical OECT that enables light‐tunable bidirectional synaptic plasticity while functioning stably in aqueous electrolytes at low operating voltages (≤ 0.4 V). Through photon‐modulated electrochemical doping and ambipolar charge transport, the device integrates light sensing, bidirectional synaptic plasticity, and sustained memory (over 130 min) in a single device, mimicking the dual‐polarity signaling of retinal bipolar cells. This design allows the transistor to read, write, and erase signals without complex external circuitry. We further demonstrate a vertically integrated optoelectronic synaptic array capable of image recording, selective optical erasure, rewriting, and background denoising, highlighting the feasibility of both global and localized reprogramming. This scalable, light‐controlled organic synapse unlocks high‐density, biocompatible circuits for artificial retinas and neuromorphic vision.

Article Details

Volume / Issue Vol. 38, Issue 24
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

X

Xiaoqian Su

Institute of Flexible Electronics (IFE Future Technologies) Xiamen University Xiamen China

X

Xihu Wu

Institute of Flexible Electronics (IFE Future Technologies) Xiamen University Xiamen China

H

He Wang

W

Wenzhe Lu

Institute of Flexible Electronics (IFE Future Technologies) Xiamen University Xiamen China

B

Bing Xue

J

Jinli Tang

Institute of Flexible Electronics (IFE Future Technologies) Xiamen University Xiamen China

Z

Zhangshanhao Li

K

Kejing Ren

Department of Materials Science and Engineering National University of Singapore Singapore Singapore

Q

Qiang He

J

Junyu Li

L

Lan Yin

Y

Yuxin Liu

S

Shiming Zhang

T

Ting Lei

C

Changsheng Wu

Department of Materials Science and Engineering, National University of Singapore