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具有滞后负微分电导的动态分子开关模拟突触行为。

Dynamic molecular switches with hysteretic negative differential conductance emulating synaptic behaviour.

作者信息

Wang Yulong, Zhang Qian, Astier Hippolyte P A G, Nickle Cameron, Soni Saurabh, Alami Fuad A, Borrini Alessandro, Zhang Ziyu, Honnigfort Christian, Braunschweig Björn, Leoncini Andrea, Qi Dong-Cheng, Han Yingmei, Del Barco Enrique, Thompson Damien, Nijhuis Christian A

机构信息

Department of Chemistry, National University of Singapore, Singapore, Singapore.

School of Chemistry and Chemical Engineering, Chongqing University, Chongqing, China.

出版信息

Nat Mater. 2022 Dec;21(12):1403-1411. doi: 10.1038/s41563-022-01402-2. Epub 2022 Nov 21.

Abstract

To realize molecular-scale electrical operations beyond the von Neumann bottleneck, new types of multifunctional switches are needed that mimic self-learning or neuromorphic computing by dynamically toggling between multiple operations that depend on their past. Here, we report a molecule that switches from high to low conductance states with massive negative memristive behaviour that depends on the drive speed and number of past switching events, with all the measurements fully modelled using atomistic and analytical models. This dynamic molecular switch emulates synaptic behavior and Pavlovian learning, all within a 2.4-nm-thick layer that is three orders of magnitude thinner than a neuronal synapse. The dynamic molecular switch provides all the fundamental logic gates necessary for deep learning because of its time-domain and voltage-dependent plasticity. The synapse-mimicking multifunctional dynamic molecular switch represents an adaptable molecular-scale hardware operable in solid-state devices, and opens a pathway to simplify dynamic complex electrical operations encoded within a single ultracompact component.

摘要

为了实现超越冯·诺依曼瓶颈的分子尺度电操作,需要新型的多功能开关,这些开关通过在依赖于其过去状态的多种操作之间动态切换来模拟自学习或神经形态计算。在此,我们报告了一种分子,它从高电导状态切换到低电导状态,具有大量负忆阻行为,该行为取决于驱动速度和过去切换事件的数量,所有测量结果都使用原子模型和分析模型进行了全面建模。这种动态分子开关模拟了突触行为和巴甫洛夫学习,所有这些都发生在一个2.4纳米厚的层内,该层比神经元突触薄三个数量级。由于其时间域和电压依赖性可塑性,这种动态分子开关提供了深度学习所需的所有基本逻辑门。这种模拟突触的多功能动态分子开关代表了一种可在固态设备中操作的适应性分子尺度硬件,并为简化编码在单个超紧凑组件内的动态复杂电操作开辟了一条途径。

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