神经形态工程学
材料科学
宽带
光电子学
硅
突触可塑性
纳米技术
人工神经网络
计算机科学
电信
生物化学
机器学习
受体
化学
作者
Hua Tan,Zhenyi Ni,Wenbing Peng,Sichao Du,Xiangkai Liu,Shuangyi Zhao,Wei Li,Zhi Ye,Mingsheng Xu,Yang Xu,Xiaodong Pi,Deren Yang
出处
期刊:Nano Energy
[Elsevier BV]
日期:2018-08-09
卷期号:52: 422-430
被引量:213
标识
DOI:10.1016/j.nanoen.2018.08.018
摘要
Optically stimulated synaptic devices are critical to the development of neuromorphic computing with broad bandwidth and efficient interconnect. Although a few interesting materials have been employed to fabricate optically stimulated synaptic devices, the use of silicon (Si) that is the material of choice for very large-scale integration circuits in the conventional von Neumann computing has not been explored for optically stimulated synaptic devices. Here we take advantage of one of the most important nanostructures of Si — Si nanocrystals (NCs) to make synaptic devices, which can be effectively stimulated by light in the unprecedented broad spectral region from the ultraviolet to near-infrared, approaching the wavelength of ∼ 2 µm. These optically stimulated Si-NC-based synaptic devices demonstrate a series of important synaptic functionalities, well mimicking biological synapses. The plasticity of Si-NC-based synaptic devices originates from the dynamic trapping and release of photogenerated carriers at defects such as dangling bonds at the NC surface. The current facile use of Si NCs in broadband optoelectronic synaptic devices with low energy consumption has important implication for the large-scale deployment of Si in the emerging neuromorphic computing.
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