神经形态工程学
双极扩散
材料科学
晶体管
生物电子学
共形矩阵
光电子学
纳米技术
突触可塑性
突触
异质结
记忆电阻器
生物相容性材料
生物神经网络
长时程增强
逻辑门
CMOS芯片
电压
光电探测器
电子线路
神经科学
计算机科学
生物分子
生物传感器
电化学
感觉适应
神经假体
带状突触
多电极阵列
集成电路
超分子化学
作者
Xiaoqian Su,Xihu Wu,Hao Wang,Wenzhe Lu,Bo Xue,Jinli Tang,Zhangshanhao Li,Kejing Ren,Qiang He,Junyu Li,Li Yin,Yuxin Liu,Weina Zhang,Ting Lei,Changsheng Wu
标识
DOI:10.1002/adma.202516989
摘要
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.
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