Optical Synaptic Devices with Multiple Encryption Features Based on SERS‐Revealed Charge‐Transfer Mechanism

材料科学 光电子学 电荷耦合器件 罗丹明6G 纳米技术 光学 化学 分子 物理 有机化学
作者
Shaoguang Zhao,Xiangyu Hou,Yue Cheng,Qiman Zhang,Jingwen Zhao,Li Tao
出处
期刊:Advanced Materials [Wiley]
标识
DOI:10.1002/adma.202503146
摘要

Abstract 2D optical synaptic devices with atomic‐scale thickness show potential for building highly integrated tunable artificial visual neural networks. However, their atomic‐scale thickness also leads to weak light absorption, limiting device photoresponse. Here, a high‐performance optical synaptic device based on a Rhodamine 6G (R6G)/InSe hybrid structure is proposed, achieving a remarkable 328.9% enhancement in photoresponse compared to InSe devices. Using surface‐enhanced Raman spectroscopy (SERS) as a nondestructive probing technique, it is demonstrated that light‐induced charge transfer between R6G and InSe is the key mechanism enabling the device's high performance. Furthermore, introducing a self‐limited oxide layer on the InSe surface provides additional evidence for the charge transfer process. This charge‐transfer‐based device effectively mimics the neurotransmitter transmission process in biological synapses, showing unique potential in applications such as image preprocessing and decoding within artificial neural networks. In addition, through surface treatment techniques, precise control over the charge transfer process is achieved, enabling the design of a multiple encryption‐based anti‐counterfeiting array and highlighting their value in on‐chip anti‐counterfeiting. By employing a spectrally noninvasive method to probe charge transfer, this study elucidates the critical role of charge transfer in optical synaptic devices and opens novel application pathways.
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