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Frustration-induced nanometre-scale inhomogeneity in a triangular antiferromagnet

机译:挫折引起的纳米反铁磁体中的纳米级不均匀性

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摘要

Phase inhomogeneity of otherwise chemically homogenous electronic systems is an essential ingredient leading to fascinating functional properties, such as high-Tc superconductivity in cuprates, colossal magnetoresistance in manganites and giant electrostriction in relaxors. In these materials distinct phases compete and can coexist owing to intertwined ordered parameters. Charge degrees of freedom play a fundamental role, although phase-separated ground states have been envisioned theoretically also for pure spin systems with geometrical frustration that serves as a source of phase competition. Here we report a paradigmatic magnetostructurally inhomogenous ground state of the geometrically frustrated α-NaMnO2 that stems from the system’s aspiration to remove magnetic degeneracy and is possible only due to the existence of near-degenerate crystal structures. Synchrotron X-ray diffraction, nuclear magnetic resonance and muon spin relaxation show that the spin configuration of a monoclinic phase is disrupted by magnetically short-range-ordered nanoscale triclinic regions, thus revealing a novel complex state of matter.
机译:化学上均一的电子系统的相不均匀性是导致引人入胜的功能特性的重要成分,这些功能特性包括铜酸盐中的高Tc超导性,锰矿中的巨大磁电阻以及弛豫器中的巨大电致伸缩。在这些材料中,由于相互关联的有序参数,不同的相竞争并且可以共存。电荷的自由度起着根本性的作用,尽管理论上也已经预见了相分离的基态对于具有几何受挫作用的纯自旋系统是作为相竞争的来源。在这里,我们报告了几何受挫的α-NaMnO2的典型磁结构非均匀基态,其源于系统消除磁性简并的愿望,并且仅由于存在近简并的晶体结构才有可能。同步加速器X射线衍射,核磁共振和μon自旋弛豫表明,单斜相的自旋构型被磁性短程有序的纳米级三斜晶区域破坏,从而揭示了一种新的复杂物质状态。

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