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首页> 外文期刊>Physical Review. B, Condensed Matter >Reversibility of magnetic field driven transition from electronic phase separation state to single-phase state in manganites: A microscopic view
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Reversibility of magnetic field driven transition from electronic phase separation state to single-phase state in manganites: A microscopic view

机译:磁场驱动从电子相分离状态转变为锰中的单相状态的磁场驱动转变:微观视图

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摘要

Electronic phase separation (EPS) is a common phenomenon in strongly correlated oxides. For colossal magnetoresistive (CMR) manganites, the EPS is so pronounced that not only does it govern the CMR behavior, but also raises a question whether EPS exists as a ground state for systems or a metastable state. While it has been well known that a magnetic field can drive the transition of the EPS state into a single-phase state in manganites, the reversibility of this transition is not well studied. In this work we use magnetic force microscopy (MFM) to directly visualize the reversibility of the field driven transition between the EPS state and the single-phase state at different temperatures. The MFM images correspond well with the global magnetic and transport property measurements, uncovering the underlying mechanism of the field driven transition between the EPS state and the single-phase state. We argue that EPS state is a consequence of system quenching whose response to an external magnetic field is governed by a local energy landscape.
机译:电子相分离(EPS)是氧化物强相关的常见现象。对于巨大磁阻(CMR)锰矿石,EPS是如此明显,这不仅可以控制CMR行为,而且还提出了一个问题,但EPS是否存在作为系统或亚稳态的地位。虽然众所周知,磁场可以将EPS状态的转变驱动到锰中的单相状态中,但这种转变的可逆性不受很好地研究。在这项工作中,我们使用磁力显微镜(MFM)直接可视化在不同温度下的EPS状态和单相状态之间的现场驱动过渡的可逆性。 MFM图像对应于全局磁和传输性能测量,揭示了EPS状态和单相状态之间的场驱动转变的基础机制。我们认为EPS状态是系统淬火的结果,其对外部磁场的响应受到局部能量景观的管辖。

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  • 来源
    《Physical Review. B, Condensed Matter 》 |2017年第20期| 195154.1-195154.7| 共7页
  • 作者单位

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    School of Physics Southeast University Nanjing 211189 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China Institute of Nanoelectronic Devices and Quantum Computing Fudan University Shanghai 200433 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China Institute of Nanoelectronic Devices and Quantum Computing Fudan University Shanghai 200433 China;

    School of Physics Southeast University Nanjing 211189 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China Institute of Nanoelectronic Devices and Quantum Computing Fudan University Shanghai 200433 China Collaborative Innovation Center of Advanced Microstructures Nanjing 210093 China;

    State Key Laboratory of Surface Physics and Department of Physics Fudan University Shanghai 200433 China Institute of Nanoelectronic Devices and Quantum Computing Fudan University Shanghai 200433 China Collaborative Innovation Center of Advanced Microstructures Nanjing 210093 China;

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