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Ultralow Power Wearable Heterosynapse with Photoelectric Synergistic Modulation

机译:具有光电协同调制的超低功耗可穿戴异质突触

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摘要

Although the energy consumption of reported neuromorphic computing devices inspired by biological systems has become lower than traditional memory, it still remains greater than bio‐synapses (≈10 fJ per spike). Herein, a flexible MoS ‐based heterosynapse is designed with two modulation modes, an electronic mode and a photoexcited mode. A one‐step mechanical exfoliation method on flexible substrate and low‐temperature atomic layer deposition process compatible with flexible electronics are developed for fabricating wearable heterosynapses. With a pre‐spike of 100 ns, the synaptic device exhibits ultralow energy consumption of 18.3 aJ per spike in long‐term potentiation and 28.9 aJ per spike in long‐term depression. The ultrafast speed and ultralow power consumption provide a path for a neuromorphic computing system owning more excellent processing ability than the human brain. By adding optical modulation, a modulatory synapse is constructed to dynamically control correlations between pre‐ and post‐synapses and realize complex global neuromodulations. The novel wearable heterosynapse expands the accessible range of synaptic weights (ratio of facilitation ≈228%), providing an insight into the application of wearable 2D highly efficient neuromorphic computing architectures.
机译:尽管受生物系统启发而报告的神经形态计算设备的能量消耗已经低于传统内存,但仍高于生物突触(每个峰值约10 fJ)。本文中,基于MoS的灵活异质突触设计有两种调制模式,即电子模式和光激发模式。为制造可穿戴的异质突触,开发了一种在柔性基板上的单步机械剥离方法以及与柔性电子设备兼容的低温原子层沉积工艺。突触装置的预峰值为100 ns,在长期增强时每个峰值的耗电量为18.3 aJ,在长期抑郁状态下每个峰值的耗电量为28.9 aJ,具有超低的能耗。超高速和超低功耗为神经形态计算系统提供了一条比人脑更出色的处理能力的路径。通过添加光调制,可以构建调制突触来动态控制突触前和突触之间的相关性,并实现复杂的全局神经调制。新型可穿戴异质突触扩大了突触权重的可访问范围(促进比率≈228%),从而为可穿戴2D高效神经形态计算体系结构的应用提供了见识。

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