神经形态工程学
材料科学
钙钛矿(结构)
光电子学
记忆电阻器
突触可塑性
光电流
突触
电极
电导
接口(物质)
生物电子学
阳极
薄膜
图层(电子)
突触重量
纳米技术
可塑性
降级(电信)
电阻抗
纳米尺度
光子学
非易失性存储器
人工神经网络
瞬态(计算机编程)
作者
Faisal Farooq,Priya Kaith,Ashok Bera
标识
DOI:10.1021/acsami.6c08360
摘要
Designing a stable hybrid perovskite memristor that exhibits synaptic plasticity under both optical and electrical stimuli is a compelling direction for exploiting the unprecedented optoelectronic properties of hybrid perovskites to their full potential towards neuromorphic computing. Here, we report that introducing a thin Polymethyl Methacrylate (PMMA) barrier layer between CH3NH3PbBr3 (MAPbBr3) and the Ag electrode enables synaptic plasticity under optical stimuli in the Ag/PMMA/MAPbBr3/TiO2/FTO memristor. A controlled experimental design with and without PMMA, in combination with electrochemical impedance studies and transient photocurrent measurements, suggests that photo-generated hole trapping at the perovskite/PMMA interface likely leads to such synaptic behavior under pulsed illumination. Moreover, the device exhibits synaptic plasticity under pulsed electrical stimuli, confirming its optoelectrical synaptic properties. Additionally, a simulated artificial neural network (ANN) utilizing experimentally measured synaptic conductance states achieves 96.14% recognition accuracy on the MNIST dataset, highlighting its potential for neuromorphic image recognition applications. The device shows no significant degradation under prolonged illumination, vacuum, elevated temperatures up to 80 °C, or long-term storage in ambient conditions, demonstrating the stability of the device with a PMMA coating and the effectiveness of the hybrid perovskite for optoelectronic neuromorphic computing.
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