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Model for strain-induced metal-insulator phase coexistence in colossal magnetoresistive perovskite manganites (invited)

机译:巨磁磁阻锰锰(邀请)中应变诱导金属 - 绝缘子相位共存模型(邀请)

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Theoretical Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545 There is considerable evidence from new generations of high resolution microscopies and scattering techniques for intrinsically multiscale structures and dynamics in complex transition-metal oxides. In particular, the coexistence of submicrometer-size insulating and metallic domains in the same sample of perovskite manganites is believed to be crucial to the understanding of colossal magnetoresistance in these materials, and has been a puzzle to both theorists and experimentalists. In this work, we demonstrate, using an atomic-scale description of lattice distortions and long-range strains, that the presence of multiple local energy minimum states with different distortions provides a natural mechanism for such multiphase coexistence within the same material. The framework provides a basis for engineering nanoscale patterns of metallic and insulating phases and understanding other novel features observed in manganites, such as precursor short-range ordering and quasielastic scattering near the phase-transition temperature, hysteretic and glassy dynamics, metastability, and photoinduced insulator-metal transition.
机译:理论部,美国洛斯阿拉莫斯国家实验室,洛斯阿拉莫斯国家实验室,新墨西哥州87545有高分辨率显微技术和散射技术在复杂的过渡金属氧化物本质上多尺度结构和动力学的新一代相当多的证据。特别是,亚微米粒度的绝缘和金属结构域的钙钛矿锰氧化物在相同样品中共存被认为是在这些材料巨磁电阻的理解是至关重要的,并一直以谜既理论家和实验。在这项工作中,我们证明,使用晶格畸变和远程菌株的原子尺度的描述中,多个局部最小能量状态的存在具有不同的失真提供用于相同的材料内的这种多相共存的天然机制。该框架提供一个基础金属和锰氧化物,如前体短程有序和相转变温度附近准弹性散射,滞后和玻璃状动力学,亚稳态绝缘相和理解其它新颖观察到的特征,和光诱导绝缘体的工程纳米级图案 - 金属转变。

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