双极扩散
材料科学
光电子学
光探测
光电流
光子学
接口
光电二极管
干扰(通信)
光电探测器
肖特基二极管
光学
光电导性
叠加原理
载流子
暗电流
光功率
共形矩阵
肖特基势垒
极性(国际关系)
石墨烯
响应度
适应(眼睛)
响应时间
步进电机
活塞(光学)
光学工程
纹理(宇宙学)
作者
Tingting Yan,Yarong Gu,Bobo Li,Ming Deng,Gang Wang,Ziqing Li,Junhao Chu,Limin Wu,Xiaosheng Fang
摘要
ABSTRACT The rapid development of artificial intelligence calls for compact, flexible, and intelligent photodetectors. However, strong background illumination can overwhelm weak optical signals, while downstream compensation imposes substantial computational burdens, thereby introducing considerable processing latency. Here, we demonstrate an ultrathin (8 µm), mechanically flexible ambipolar electronic vision (AEV) system that suppresses background optical interference directly at the photodetection front end. Symmetric back‐to‐back Schottky barriers minimize the net vertical internal electric field, while a self‐assembled donor‐enriched micron‐scale texture generates a small surface‐potential gradient (∼10 mV) to balance carrier transport and collection. This mechanism stabilizes illumination‐direction‐dependent photocurrent polarity near zero bias, reduces the minimum irradiance required for ambipolar operation from 175 mW cm −2 to 0.1 mW cm −2 , corresponding to an approximately 1750‐fold reduction. Through the device‐level superposition of oppositely signed photocurrents, the ultrathin, flexible AEV array directly suppresses background‐induced photocurrent offsets and exhibits bidirectional response times of ∼20 µs, enabling rapid photonic adaptation. The ambipolar response remains stable after array integration and 3500 bending cycles. Nearly 100% recognition accuracy is maintained under strong background illumination of ∼11 mW cm −2 , establishing a device‐level strategy for rapid and reliable visual perception in flexible and conformable electronic vision systems.
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