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金属氧化物的单极和双极电阻开关的缩放效应。

Scaling effect on unipolar and bipolar resistive switching of metal oxides.

机构信息

Institute of Scientific and Industrial Research, Osaka University, 8-1 Mihogaoka, Ibaraki, Osaka 567-0047, Japan.

出版信息

Sci Rep. 2013;3:1657. doi: 10.1038/srep01657.

Abstract

Electrically driven resistance change in metal oxides opens up an interdisciplinary research field for next-generation non-volatile memory. Resistive switching exhibits an electrical polarity dependent "bipolar-switching" and a polarity independent "unipolar-switching", however tailoring the electrical polarity has been a challenging issue. Here we demonstrate a scaling effect on the emergence of the electrical polarity by examining the resistive switching behaviors of Pt/oxide/Pt junctions over 8 orders of magnitudes in the areas. We show that the emergence of two electrical polarities can be categorised as a diagram of an electric field and a cell area. This trend is qualitatively common for various oxides including NiOx, CoOx, and TiO(2-x). We reveal the intrinsic difference between unipolar switching and bipolar switching on the area dependence, which causes a diversity of an electrical polarity for various resistive switching devices with different geometries. This will provide a foundation for tailoring resistive switching behaviors of metal oxides.

摘要

电驱动的金属氧化物电阻变化为下一代非易失性存储器开辟了一个跨学科的研究领域。电阻开关表现出电极性依赖的“双极开关”和电极性独立的“单极开关”,然而,调整电极性一直是一个具有挑战性的问题。在这里,我们通过研究 Pt/氧化物/Pt 结在面积上超过 8 个数量级的电阻开关行为,展示了电极性出现的缩放效应。我们表明,两个电极性的出现可以归类为电场图和单元面积。这一趋势在各种氧化物中是定性相同的,包括 NiOx、CoOx 和 TiO(2-x)。我们揭示了单极开关和双极开关在面积依赖性上的内在差异,这导致了各种具有不同几何形状的电阻开关器件的电极性多样性。这将为调整金属氧化物的电阻开关行为提供基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8c12/3625919/ad659b938604/srep01657-f1.jpg

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