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XAFS 研究取向无序在 La(0.5)Ca(0.5)MnO3 纳米颗粒中稳定铁磁金属相的作用。

XAFS investigation of the role of orientational disorder in the stabilization of the ferromagnetic metallic phase in nanoparticles of La(0.5)Ca(0.5)MnO3.

机构信息

High Pressure and Synchrotron Radiation Physics Division, Bhabha Atomic Research Centre, Trombay, Mumbai 400085, India.

出版信息

J Phys Condens Matter. 2012 Aug 22;24(33):336001. doi: 10.1088/0953-8984/24/33/336001. Epub 2012 Jul 18.

Abstract

The inclusion of the contribution of Jahn-Teller distortion of MnO(6) units, in addition to double-exchange, has been largely successful in explaining the magneto-transport behavior of manganites. However, our recent experiments on La(0.5)Ca(0.5)MnO(3) demonstrated the limitation of these factors in explaining the radical difference between the magneto-transport properties of bulk and nanocrystalline forms. While bulk La(0.5)Ca(0.5)MnO(3) exhibits insulator character (4-300 K) and an anti-ferromagnetic-ferromagnetic transition at 200 K, the nanocrystalline form stabilizes in a metallic ferromagnetic phase (4-300 K). This is counter-intuitive since large Jahn-Teller distortion, which promotes anti-ferromagnetism or insulator character, exists in the nanocrystals too (as indicated by x-ray diffraction results). In this work, we resolve this paradox by considering the role of structural disorder. Employing x-ray absorption spectroscopy, we establish that the disorder in inter-octahedral coupling is enhanced by 57% in the nanocrystals, as the octahedral units are randomly oriented with respect to each other. This orientational disorder promotes metallic ferromagnetism by destroying the stringent orbital ordering that is needed for anti-ferromagnetism and the co-operative nature of the orbital order.

摘要

除了双交换作用外,MnO(6)单元 Jahn-Teller 扭曲的贡献的纳入在很大程度上成功地解释了锰氧化物的磁输运行为。然而,我们最近在 La(0.5)Ca(0.5)MnO(3)上的实验表明,这些因素在解释体相和纳米晶形式的磁输运性质之间的显著差异方面存在局限性。虽然体相 La(0.5)Ca(0.5)MnO(3)在 4-300 K 表现出绝缘性质和在 200 K 时反铁磁-铁磁转变,但纳米晶形式稳定在金属铁磁相中(4-300 K)。这与直觉相悖,因为纳米晶中也存在促进反铁磁性或绝缘性质的大 Jahn-Teller 扭曲(如 X 射线衍射结果所示)。在这项工作中,我们通过考虑结构无序的作用来解决这个悖论。我们采用 X 射线吸收光谱法,确定了在纳米晶中,八面体间耦合的无序度增强了 57%,因为八面体单元相对于彼此随机取向。这种取向无序通过破坏反铁磁所需的严格轨道有序和轨道有序的协同性来促进金属铁磁性。

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