神经形态工程学
材料科学
光子学
光电子学
半导体
无定形固体
氧化物
纳米技术
光电导性
人工神经网络
计算机科学
化学
有机化学
冶金
机器学习
作者
Minkyung Lee,Woobin Lee,Seungbeom Choi,Jeong‐Wan Jo,Jaekyun Kim,Sung Kyu Park,Yong‐Hoon Kim
标识
DOI:10.1002/adma.201700951
摘要
The combination of a neuromorphic architecture and photonic computing may open up a new era for computational systems owing to the possibility of attaining high bandwidths and the low‐computation‐power requirements. Here, the demonstration of photonic neuromorphic devices based on amorphous oxide semiconductors (AOSs) that mimic major synaptic functions, such as short‐term memory/long‐term memory, spike‐timing‐dependent plasticity, and neural facilitation, is reported. The synaptic functions are successfully emulated using the inherent persistent photoconductivity (PPC) characteristic of AOSs. Systematic analysis of the dynamics of photogenerated carriers for various AOSs is carried out to understand the fundamental mechanisms underlying the photoinduced carrier‐generation and relaxation behaviors, and to search for a proper channel material for photonic neuromorphic devices. It is found that the activation energy for the neutralization of ionized oxygen vacancies has a significant influence on the photocarrier‐generation and time‐variant recovery behaviors of AOSs, affecting the PPC behavior.
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