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外延 SrFeO 薄膜中的定向金属-绝缘相变。

Topotactic Metal-Insulator Transition in Epitaxial SrFeO Thin Films.

机构信息

Department of Physics, Sungkyunkwan University, Suwon, 16419, South Korea.

Center for Integrated Nanostructure Physics, Institute for Basic Science, Sungkyunkwan University, Suwon, 16419, South Korea.

出版信息

Adv Mater. 2017 Oct;29(37). doi: 10.1002/adma.201606566. Epub 2017 Jul 31.

Abstract

Topotactic phase transformation enables structural transition without losing the crystalline symmetry of the parental phase and provides an effective platform for elucidating the redox reaction and oxygen diffusion within transition metal oxides. In addition, it enables tuning of the emergent physical properties of complex oxides, through strong interaction between the lattice and electronic degrees of freedom. In this communication, the electronic structure evolution of SrFeO epitaxial thin films is identified in real-time, during the progress of reversible topotactic phase transformation. Using real-time optical spectroscopy, the phase transition between the two structurally distinct phases (i.e., brownmillerite and perovskite) is quantitatively monitored, and a pressure-temperature phase diagram of the topotactic transformation is constructed for the first time. The transformation at relatively low temperatures is attributed to a markedly small difference in Gibbs free energy compared to the known similar class of materials to date. This study highlights the phase stability and reversibility of SrFeO thin films, which is highly relevant for energy and environmental applications exploiting the redox reactions.

摘要

拓扑相转变在不丢失母体相晶体对称性的情况下实现结构转变,为阐明过渡金属氧化物中的氧化还原反应和氧扩散提供了有效的平台。此外,它还通过晶格和电子自由度之间的强相互作用,调整复杂氧化物的新兴物理性质。在本通讯中,实时确定了 SrFeO 外延薄膜在可逆拓扑相转变过程中的电子结构演变。通过实时光学光谱,定量监测了两种结构截然不同的相(即尖晶石和钙钛矿)之间的相变,并首次构建了拓扑转变的压-温相图。相对较低温度下的转变归因于与迄今为止已知的同类材料相比,吉布斯自由能的显著差异较小。这项研究强调了 SrFeO 薄膜的相稳定性和可逆性,这对于利用氧化还原反应的能源和环境应用具有重要意义。

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