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Artificial visual systems enabled by quasi–two-dimensional electron gases in oxide superlattice nanowires

机译:通过氧化物超晶线的准二维电子气体使得人工视觉系统能够

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Rapid development of artificial intelligence techniques ignites the emerging demand on accurate perception and understanding of optical signals from external environments via brain-like visual systems. Here, enabled by quasi–two-dimensional electron gases (quasi-2DEGs) in InGaOsub3/sub(ZnO)sub3/sub superlattice nanowires (NWs), an artificial visual system was built to mimic the human ones. This system is based on an unreported device concept combining coexistence of oxygen adsorption-desorption kinetics on NW surface and strong carrier quantum-confinement effects in superlattice core, to resemble the biological Casup2+/sup ion flux and neurotransmitter release dynamics. Given outstanding mobility and sensitivity of superlattice NWs, an ultralow energy consumption down to subfemtojoule per synaptic event is realized in quasi-2DEG synapses, which rivals that of biological synapses and now available synapse-inspired electronics. A flexible quasi-2DEG artificial visual system is demonstrated to simultaneously perform high-performance light detection, brain-like information processing, nonvolatile charge retention, in situ multibit-level memory, orientation selectivity, and image memorizing.
机译:人工智能技术的快速发展点燃了通过脑视觉系统从外部环境的准确感知和理解光学信号的新兴的需求。这里,由ingao 3 (zno) 3 超晶纳米线(nws)中的准二维电子气体(准二极管)(quasi-2degs)使能,构建了一种人工视觉系统模仿人类。该系统基于未报告的设备概念,将氧气吸附 - 解吸动力学的共存在NW表面和超晶格核中的强载体量子限制效应中,以类似于生物Ca 2 + / sup>离子通量和神经递质释放动力学。鉴于超晶格NWS的突出流动性和敏感性,在准2deg突触中实现了每次突触事件的超低能量消耗,以准2DEG突触实现,该突触将竞争对手的生物突触和现在可用的Synapse启发电子设备。证明了一种灵活的准2DEG人工视觉系统,同时执行高性能光检测,脑壳的信息处理,非易失性充电保留,原位多层级存储器,方向选择性和图像记忆。

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