Atomic scale switches based on solid state ionics

IF 7.7 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Advances in Physics: X Pub Date : 2022-04-13 DOI:10.1080/23746149.2022.2065217
K. Terabe, T. Tsuchiya, T. Tsuruoka
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引用次数: 2

Abstract

ABSTRACT The atomic scale switch, which operates on the principle of solid-state ionics, is an ultrafine device that takes advantage of the fact that the properties of materials can be changed significantly by the transport and chemical reaction of a small number of ions in a solid. The switch (e.g. ‘atomic switch’) actually works by using an ion-conducting solid electrolyte or an ion-/electron-conducting mixed-conductor as the device material, and by applying an external voltage to control local ion transport and electrochemical reaction. With the application of an external voltage, a bridge is formed as a conductive filament in the solid electrolyte or the mixed conductor between electrodes. The atomic structure of the point contact in said filament can be reversibly changed by precise control of the applied voltage. By controlling the atomic structure of the point contact, interesting functions are obtained, such as fast on/off resistive switching, switching between each state of quantized conductance and neuromorphic properties. This atomic scale switch has the potential to overcome the functional and performance limitations of conventional integrated circuits because it can be used in conjunction with extant semiconductor devices. Graphical abstract
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基于固态离子的原子尺度开关
摘要原子级开关是一种基于固态离子原理的超细器件,它利用了固体中少量离子的传输和化学反应可以显著改变材料性质的事实。开关(例如“原子开关”)实际上是通过使用离子导电固体电解质或离子/电子导电混合导体作为器件材料,并通过施加外部电压来控制局部离子传输和电化学反应来工作的。通过施加外部电压,在固体电解质或电极之间的混合导体中形成桥作为导电细丝。所述细丝中的点接触的原子结构可以通过精确控制所施加的电压而可逆地改变。通过控制点接触的原子结构,可以获得有趣的功能,例如快速导通/截止电阻切换、量化电导的每个状态之间的切换和神经形态特性。这种原子级开关有可能克服传统集成电路的功能和性能限制,因为它可以与现有的半导体器件结合使用。图形摘要
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来源期刊
Advances in Physics: X
Advances in Physics: X Physics and Astronomy-General Physics and Astronomy
CiteScore
13.60
自引率
0.00%
发文量
37
审稿时长
13 weeks
期刊介绍: Advances in Physics: X is a fully open-access journal that promotes the centrality of physics and physical measurement to modern science and technology. Advances in Physics: X aims to demonstrate the interconnectivity of physics, meaning the intellectual relationships that exist between one branch of physics and another, as well as the influence of physics across (hence the “X”) traditional boundaries into other disciplines including: Chemistry Materials Science Engineering Biology Medicine
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