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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >2D layered metal-halide perovskite/oxide semiconductor-based broadband optoelectronic synaptic transistors with long-term visual memory
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2D layered metal-halide perovskite/oxide semiconductor-based broadband optoelectronic synaptic transistors with long-term visual memory

机译:2D分层金属卤化物钙钛矿/氧化物半导体基宽带光电突触晶体管,具有长期视觉记忆

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To implement neuromorphic visual systems that can perceive and memorize optical information, it is essential to realize the artificial synapses that respond to optical signals. Organic-inorganic halide perovskites (OIHPs) have been considered as optically modulated synapses due to high absorption coefficient and long charge-carrier lifetime. However, it is difficult to store the optical information because photo-excited carriers recombine after removal of illumination. Here, we combine an OIHP with indium zinc tin oxide (IZTO) to implement artificial synapses that can perceive and memorize optical information for long-term storage in neuromorphic visual systems. The transparent IZTO on OIHP allows optical signal absorption by the OIHP and protects it from atmosphere exposure. Excellent optical absorption of OIHP leads to generation of photo-excited carriers, and the band alignment between IZTO and OIHP facilitates the spatial separation of photo-excited carriers that serves as the basis of optically-meditated charge trapping; these characteristics enable nonvolatile change in conductance. Optical synapses show potentiation/depression under multiple wavelengths with a large dynamic range of similar to 10(4), which is significantly advantageous for recognition accuracy in artificial neural networks. These results demonstrate the feasibility of OIHP-based optical synapses for neuromorphic visual systems.
机译:为了实现能够感知和记忆光学信息的神经形态视觉系统,必须实现对光学信号作出反应的人工突触。有机-无机卤化物钙钛矿(OIHPs)由于具有高吸收系数和长载流子寿命而被认为是光调制突触。然而,由于光激发载流子在去除光照后重新组合,光信息很难存储。在这里,我们将OIHP与氧化铟锌锡(IZTO)结合,以实现人工突触,该突触可以感知和记忆光学信息,以便在神经形态视觉系统中长期存储。OIHP上的透明IZTO允许OIHP吸收光信号,并防止其暴露在大气中。OIHP优异的光吸收导致光激发载流子的产生,而IZTO和OIHP之间的能带对准有助于光激发载流子的空间分离,这是光诱导电荷捕获的基础;这些特性使电导发生非挥发性变化。光学突触在多个波长下表现出增强/抑制,其动态范围类似于10(4),这对人工神经网络中的识别精度非常有利。这些结果证明了基于OIHP的光学突触用于神经形态视觉系统的可行性。

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