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Translating reproducible phase-separated texture in manganites into reproducible two-state low-field magnetoresistance: An imaging and transport study

机译:将锰矿中可再现的相分离织构转换为可再现的两态低场磁电阻:成像和传输研究

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摘要

In thin-film La_(0.6)Ca_(0.4)MnO_3, conducting-tip and magnetic force microscopy reveal a pattern of nanoscale phase separation that is reproducible across cooling runs. This pattern represents the intersection of buried three-dimensional filamentary ferromagnetic metallic pathways with the sample surface. As an interlayer in current-perpendicular-to-the-plane trilayer devices, this phase-separated material magnetically decouples ferromagnetic metallic La_(0.7)Ca_(0.3)MnO_3 electrodes which switch sharply. This yields sharp two-state low-field magnetoresistance that is also reproducible across cooling runs. The reproducibility and the magnitude of the resistance jump are linked to highly resistive (~10~(-12) Ω m~2) constrained domain walls in the pathways of the phase-separated interlayer. Phase separation is normally associated with high-field colossal magnetoresistance and, therefore, its exploitation here to produce low-field effects is unusual.
机译:在薄膜La_(0.6)Ca_(0.4)MnO_3中,导电尖端和磁力显微镜显示了在冷却过程中可再现的纳米级相分离模式。该图案表示埋藏的三维丝状铁磁金属通道与样品表面的相交。作为电流垂直于平面的三层设备的中间层,这种相分离的材料使快速转换的铁磁金属La_(0.7)Ca_(0.3)MnO_3电极去磁。这样会产生尖锐的两态低场磁阻,在整个冷却过程中也可重现。电阻跳跃的可再现性和大小与相分离夹层通道中高电阻(〜10〜(-12)Ωm〜2)约束畴壁有关。相分离通常与高磁场巨磁电阻有关,因此,在此利用相分离产生低磁场效应是不寻常的。

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