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基于电控单分子反应的忆阻元件

A Memristive Element Based on an Electrically Controlled Single-Molecule Reaction.

作者信息

Li Haipeng B, Tebikachew Behabitu E, Wiberg Cedrik, Moth-Poulsen Kasper, Hihath Joshua

机构信息

Department of Electrical and Computer Engineering, University of California Davis, Davis, CA, 95616, USA.

Department of Chemistry and Chemical Engineering, Chalmers University of Technology, 41296, Gothenburg, Sweden.

出版信息

Angew Chem Int Ed Engl. 2020 Jul 6;59(28):11641-11646. doi: 10.1002/anie.202002300. Epub 2020 Apr 21.

Abstract

The exponential proliferation of data during the information age has required the continuous exploration of novel storage paradigms, materials, and devices with increasing data density. As a step toward the ultimate limits in data density, the development of an electrically controllable single-molecule memristive element is reported. In this device, digital information is encoded through switching between two isomer states by applying a voltage signal to the molecular junction, and the information is read out by monitoring the electrical conductance of each isomer. The two states are cycled using an electrically controllable local-heating mechanism for the forward reaction and catalyzed by a single charge-transfer process for the reverse switching. This single-molecule device can be modulated in situ, is fully reversible, and does not display stochastic switching. The I-V curves of this single-molecule system also exhibit memristive character. These features suggest a new approach for the development of molecular switching systems and storage-class memories.

摘要

信息时代数据的指数级增长要求不断探索具有更高数据密度的新型存储范式、材料和器件。作为迈向数据密度极限的一步,本文报道了一种电控单分子忆阻元件的开发。在该器件中,通过向分子结施加电压信号,在两种异构体状态之间切换来编码数字信息,并通过监测每种异构体的电导来读取信息。两种状态通过用于正向反应的电控局部加热机制进行循环,并由单个电荷转移过程催化反向切换。这种单分子器件可以原位调制,完全可逆,并且不显示随机切换。该单分子系统的电流-电压曲线也表现出忆阻特性。这些特性为分子开关系统和存储类存储器的开发提供了一种新方法。

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