Controllable resistive switching behaviors in heteroepitaxial LaNiO3/Nb:SrTiO3 Schottky junctions through oxygen vacancies engineering

材料科学 拉尼奥 热离子发射 肖特基势垒 肖特基二极管 氧气 钙钛矿(结构) 异质结 电阻随机存取存储器 记忆电阻器 制作 光电子学 量子隧道 纳米技术 凝聚态物理 电子工程 结晶学 铁电性 化学 电介质 电子 二极管 物理化学 电极 有机化学 病理 替代医学 工程类 物理 医学 量子力学
作者
Yong Zhang,Shunhua Gao,Guiming Cao,Chunrui Ma,Nan Hu,Ming Liu
出处
期刊:Nanotechnology [IOP Publishing]
卷期号:34 (37): 375201-375201 被引量:2
标识
DOI:10.1088/1361-6528/acdbd5
摘要

Abstract Perovskite oxide-based memristors have been extensively investigated for the application of non-volatile memories, and the oxygen vacancies associated with Schottky barrier changing are considered as the origin of the memristive behaviors. However, due to the difference of device fabrication progress, various resistive switching (RS) behaviors have been observed even in one device, deteriorating the stability and reproducibility of devices. Precisely controlling the oxygen vacancies distribution and shedding light on the behind physic mechanism of these RS behaviors, are highly desired to help improve the performance and stability of such Schottky junction-based memristors. In this work, the epitaxial LaNiO 3 (LNO)/Nb:SrTiO 3 (NSTO) is adopted to explore the influence of oxygen vacancy profiles on these abundant RS phenomena. It demonstrates that the migration of oxygen vacancy in LNO films plays a key role in memristive behaviors. When the effect of oxygen vacancies at the LNO/NSTO interface is negligible, improving the oxygen vacancies concentration in LNO film could facilitate resistance on/off ratio of HRS and LRS, and the corresponding conducting mechanisms attributes to the thermionic emission and tunneling-assisted thermionic emission, respectively. Moreover, it is found that reasonably increasing the oxygen vacancies at LNO/NSTO interface makes trap-assisted tunneling possible, also providing an effective way to improve the performance of the device. The results in this work have clearly elucidated the relationship between oxygen vacancy profile and RS behaviors, and give physical insights into the strategies for improving the device performance of Schottky junction-based memristors.
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