An Optoelectronic Synapse Based on Two‐Dimensional Violet Phosphorus Heterostructure

光电子学 异质结 材料科学 黑磷 突触 免疫突触 纳米技术 神经科学 生物 冶金 免疫系统 T细胞受体 免疫学 T细胞
作者
Xiaoxian Liu,Shuiyuan Wang,Ziye Di,Haoqi Wu,Chunsen Liu,Peng Zhou
出处
期刊:Advanced Science [Wiley]
卷期号:10 (22): e2301851-e2301851 被引量:61
标识
DOI:10.1002/advs.202301851
摘要

Abstract Neuromorphic computing can efficiently handle data‐intensive tasks and address the redundant interaction required by von Neumann architectures. Synaptic devices are essential components for neuromorphic computation. 2D phosphorene, such as violet phosphorene, show great potential in optoelectronics due to their strong light‐matter interactions, while current research is mainly focused on synthesis and characterization, its application in photoelectric devices is vacant. Here, the authors combined violet phosphorene and molybdenum disulfide to demonstrate an optoelectronic synapse with a light‐to‐dark ratio of 10 6 , benefiting from a significant threshold shift due to charge transfer and trapping in the heterostructure. Remarkable synaptic properties are demonstrated, including a dynamic range ( DR ) of > 60 dB, 128 (7‐bit) distinguishable conductance states, electro‐optical dependent plasticity, short‐term paired‐pulse facilitation, and long‐term potentiation/depression. Thanks to the excellent DR and multi‐states, high‐precision image classification with accuracies of 95.23% and 79.65% is achieved for the MNIST and complex Fashion‐MNIST datasets, which is close to the ideal device (95.47%, 79.95%). This work opens the way for the use of emerging phosphorene in optoelectronics and provides a new strategy for building synaptic devices for high‐precision neuromorphic computing.
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