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首页> 外文期刊>Small >A New Memristor with 2D Ti_3C_2T_x MXene Flakes as an Artificial Bio-Synapse
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A New Memristor with 2D Ti_3C_2T_x MXene Flakes as an Artificial Bio-Synapse

机译:具有2D TI_3C_2T_X MXENE作为人工生物突触的新忆晶

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摘要

Two-dimensional (2D) materials have attracted extensive research interest in academia due to their excellent electrochemical properties and broad application prospects. Among them, 2D transition metal carbides (Ti_3C_2T_x) show semiconductor characteristics and are studied widely. However, there are few academic reports on the use of 2D MXene materials as memristors. In this work, reported is a memristor based on MXene Ti_3C_2T_x flakes. After electroforming, Al/Ti_3C_2T_x/Pt devices exhibit repeatable resistive switching (RS) behavior. More interestingly, the resistance of this device can be continuously modulated under the pulse sequence with 10 ns pulse width, and the pulse width of 10 ns is much lower than that in other reported work. Moreover, on the nanosecond scale, the transition from short-term plasticity to longterm plasticity is achieved. These two properties indicate that this device is favorable for ultrafast biological synapse applications and high-efficiency training of neural networks. Through the exploration of the microstructure, Ti vacancies and partial oxidation are proposed as the origins of the physical mechanism of RS behavior. This work reveals that 2D MXene Ti_3C_2T_x flakes have excellent potential for use in memristor devices, which may open the door for more functions and applications.
机译:由于其出色的电化学性质和广泛的应用前景,二维(2D)材料引起了学术界的广泛研究兴趣。其中,2D过渡金属碳化物(TI_3C_2T_X)显示半导体特性并广泛研究。然而,有很少有关于使用2D MXENE材料作为存储器的学术报告。在这项工作中,报告是基于MXENE TI_3C_2T_X薄片的忆反镜。电铸后,AL / TI_3C_2T_X / PT器件表现出可重复的电阻切换(RS)行为。更有意义地,可以在具有10ns脉冲宽度的脉冲序列下连续调制该装置的电阻,并且10 ns的脉冲宽度远低于其他报告的工作。此外,在纳秒尺度上,实现了从短期可塑性到长期可塑性的过渡。这两个属性表明该设备有利于超快生物突触应用和神经网络的高效培训。通过探索微观结构,提出了Ti空位和部分氧化作为RS行为的物理机制的起源。这项工作揭示了2D MXENE TI_3C_2T_X薄片具有在忆内器件中使用的优异潜力,可以为更多功能和应用打开门。

著录项

  • 来源
    《Small》 |2019年第25期|共9页
  • 作者单位

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Research Center of Machine Vision Engineering of Hebei University Key Laboratory of Digital Medical Engineering of Hebei Province College of Electron and Information Engineering Hebei University Baoding 071002 P. R. China;

    Key Laboratory of Microelectronic Devices &

    Integrated Technology Institute of Microelectronics Chinese Academy of Sciences Beijing 100029 P. R. China;

    State Key Laboratory of ASIC and System School of Microelectronics Fudan University Shanghai 200433 China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 特种结构材料;
  • 关键词

    memristors; MXene (Ti_3C_2T_x); synapses; Ti and O vacancies;

    机译:忆子;MXENE(TI_3C_2T_X);突触;TI和o职位空缺;

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