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Colossal magnetoresistance in manganites: role of the electronic phase segregation

机译:锰矿石巨大磁阻:电子相隔离的作用

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The huge intrinsic magnetoresistance found in mixed-valence manganites has as origin the existence of a metal-insulator transition. Usually, this transition is accompanied by a para-ferromagnetic transition. In the paramagnetic phase the formation of dynamic phase segregation in the form of magnetic polarons provides the mechanism for carrier localisation. The insulator state can also be achieved in the antiferromagnetic state or when the long-range ferromagnetic interaction is not extended across the whole sample, giving rise to the existence of static phase segregation in which metallic ferromagnetic clusters coexist with insulating paramagnetic, antiferromagnetic or spin-glass regions. In such insulating regions, charge ordering can also be present. The application of a magnetic field can increase the size of the ferromagnetic clusters up to a critical field at which they start to percolate and, consequently, the carrier mobility is strongly increased producing giant magnetoresistance. In this communication we report on experiments of magnetovolume effects and neutron diffraction including SANS (small angle neutron scattering) giving evidence for such effects. They can be explained by the interplay of magnetic long-range interaction and the large electron-phonon interaction observed in these compounds. The relevance of this interaction for the electronic phase segregation has been proved by means of the oxygen isotopic effect.
机译:在混合价锰酯中发现的巨大内在磁阻具有原始金属绝缘体过渡的存在。通常,这种转变伴随着段铁磁转变。在顺磁阶段中,磁极化形式的动态相位的形成提供了用于载体定位的机制。绝缘体状态也可以在反铁磁状态下实现,或者在整个样品上不扩展远程铁磁相互作用时,产生静态分离的存在,其中金属铁磁簇与绝缘顺磁,反铁磁或旋转共存玻璃区。在这种绝缘区域中,也可以存在电荷排序。磁场的施加可以将铁磁簇的尺寸增加到它们开始渗透的临界场,并且因此,载流子迁移率强烈地增加产生巨磁阻。在该通信中,我们报告磁伏作用和中子衍射的实验,包括SAN(小角度中子散射),以证明这种效果。它们可以通过磁性远程相互作用的相互作用来解释,并且在这些化合物中观察到的大电子 - 声子相互作用。通过氧同位素效应证明了这种相互作用对电子相偏析的相关性。

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