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Electrically controlled transformation of memristive titanates into mesoporous titanium oxides via incongruent sublimation

机译:通过不一致的升华将忆阻钛酸盐电控制转变为介孔二氧化钛

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摘要

Perovskites such as SrTiO3, BaTiO3, and CaTiO3 have become key materials for future energy-efficient memristive data storage and logic applications due to their ability to switch their resistance reversibly upon application of an external voltage. This resistance switching effect is based on the evolution of nanoscale conducting filaments with different stoichiometry and structure than the original oxide. In order to design and optimize memristive devices, a fundamental understanding of the interaction between electrochemical stress, stoichiometry changes and phase transformations is needed. Here, we follow the approach of investigating these effects in a macroscopic model system. We show that by applying a DC voltage under reducing conditions on a perovskite slab it is possible to induce stoichiometry polarization allowing for a controlled decomposition related to incongruent sublimation of the alkaline earth metal starting in the surface region. This way, self-formed mesoporous layers can be generated which are fully depleted by Sr (or Ba, Ca) but consist of titanium oxides including TiO and Ti3O with tens of micrometre thickness. This illustrates that phase transformations can be induced easily by electrochemical driving forces.
机译:钙钛矿,例如SrTiO3,BaTiO3和CaTiO3,已成为未来节能型忆阻数据存储和逻辑应用的关键材料,因为它们具有在施加外部电压时可逆地切换电阻的能力。这种电阻切换效果是基于化学计量和结构与原始氧化物不同的纳米级导电丝的演变而来的。为了设计和优化忆阻器件,需要对电化学应力,化学计量变化和相变之间的相互作用有基本的了解。在这里,我们采用在宏观模型系统中研究这些效应的方法。我们表明,通过在还原条件下对钙钛矿平板施加直流电压,可以诱导化学计量极化,从而实现与从表面区域开始的碱土金属的不均匀升华有关的受控分解。这样,可以生成自形成的介孔层,该层被Sr(或Ba,Ca)完全耗尽,但由钛氧化物(包括TiO和Ti3O组成)的厚度为数十微米。这说明通过电化学驱动力可以容易地引起相变。

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