Ultrathin SrTiO3-based oxide memristor with both drift and diffusive dynamics as versatile synaptic emulators for neuromorphic computing

Fang Nie, Jie Wang, Hongdou Fang, Shuanger Ma, Feiyang Wu, Wenbo Zhao, Shizhan Wei, Yuling Wang, Le Zhao, Shishen Yan, Chen Ge, Li Zheng
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引用次数: 1

Abstract

Artificial synapses are electronic devices that simulate important functions of biological synapses, and therefore are the basic components of artificial neural morphological networks for brain-like computing. One of the most important objectives for developing artificial synapses is to simulate the characteristics of biological synapses as much as possible, especially their self-adaptive ability to external stimuli. Here, we have successfully developed an artificial synapse with multiple synaptic functions and highly adaptive characteristics based on a simple SrTiO3/Nb: SrTiO3 heterojunction type memristor. Diverse functions of synaptic learning, such as short-term/long-term plasticity (STP/LTP), transition from STP to LTP, learning–forgetting–relearning behaviors, associative learning and dynamic filtering, are all bio-realistically implemented in a single device. The remarkable synaptic performance is attributed to the fascinating inherent dynamics of oxygen vacancy drift and diffusion, which give rise to the coexistence of volatile- and nonvolatile-type resistive switching. This work reports a multi-functional synaptic emulator with advanced computing capability based on a simple heterostructure, showing great application potential for a compact and low-power neuromorphic computing system.
具有漂移和扩散动力学的超薄srtio3氧化物忆阻器作为神经形态计算的多功能突触模拟器
人工突触是模拟生物突触重要功能的电子设备,是类脑计算人工神经形态网络的基本组成部分。人工突触的发展最重要的目标之一是尽可能模拟生物突触的特性,特别是其对外部刺激的自适应能力。在这里,我们成功地开发了一个基于简单的SrTiO3/Nb: SrTiO3异质结型记忆电阻器的具有多种突触功能和高度自适应特性的人工突触。突触学习的短期/长期可塑性(STP/LTP)、从STP到LTP的转换、学习-遗忘-再学习行为、联想学习和动态过滤等多种功能都可以在单个设备上生物现实地实现。这种卓越的突触性能归因于氧空位漂移和扩散的内在动力学,这导致了挥发型和非挥发型电阻开关的共存。本工作报道了一种基于简单异质结构的具有先进计算能力的多功能突触模拟器,在紧凑、低功耗的神经形态计算系统中显示出巨大的应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.40
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