记忆电阻器
长时程增强
突触
突触可塑性
神经形态工程学
期限(时间)
可塑性
神经促进
神经科学
材料科学
变质塑性
非突触性可塑性
神经可塑性
光电子学
计算机科学
物理
化学
电气工程
人工神经网络
生物
人工智能
工程类
量子力学
生物化学
复合材料
受体
作者
Xumeng Zhang,Sen Liu,Xiaolong Zhao,Facai Wu,Quantan Wu,Wei Wang,Rongrong Cao,Yilin Fang,Hangbing Lv,Shibing Long,Qi Liu,Ming Liu
标识
DOI:10.1109/led.2017.2722463
摘要
Short-term plasticity and long-term plasticity of bio-synapse are thought to underpin critical physiological functions in neural circuits. In this letter, we vividly emulated the short-term and long-term synaptic functions in a single Cu/a-Si/Pt memristor. By controlling the injection quantity of Cu cations into the a-Si layer, the device showed volatile and non-volatile resistive switching behaviors. Owing to the unique characteristics of Cu/a-Si/Pt device, the short-term synaptic functions, i.e., short-term potentiation, pair-pulse facilitation, and long-term functions, i.e., long-term potentiation/depression, spike-timing-dependent plasticity, were mimicked in the memristor successfully. Furthermore, the transition from short-term memory to long-term memory of the device was also observed under repeated stimuli. The experimental results confirm that the Cu/a-Si/Pt memristor with various synaptic behaviors has a potential application in the brain-inspired computing systems.
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