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高压下的X射线磁衍射

X-ray magnetic diffraction under high pressure.

作者信息

Wang Yishu, Rosenbaum T F, Feng Yejun

机构信息

The Institute for Quantum Matter and Department of Physics and Astronomy, The Johns Hopkins University, Baltimore, Maryland 21218, USA.

Division of Physics, Mathematics, and Astronomy, California Institute of Technology, Pasadena, California 91125, USA.

出版信息

IUCrJ. 2019 Jun 21;6(Pt 4):507-520. doi: 10.1107/S2052252519007061. eCollection 2019 Jul 1.

Abstract

Advances in both non-resonant and resonant X-ray magnetic diffraction since the 1980s have provided researchers with a powerful tool for exploring the spin, orbital and ion degrees of freedom in magnetic solids, as well as parsing their interplay. Here, we discuss key issues for performing X-ray magnetic diffraction on single-crystal samples under high pressure (above 40 GPa) and at cryogenic temperatures (4 K). We present case studies of both non-resonant and resonant X-ray magnetic diffraction under pressure for a spin-flip transition in an incommensurate spin-density-wave material and a continuous quantum phase transition of a commensurate all-in-all-out antiferromagnet. Both cases use diamond-anvil-cell technologies at third-generation synchrotron radiation sources. In addition to the exploration of the athermal emergence and evolution of antiferromagnetism discussed here, these techniques can be applied to the study of the pressure evolution of weak charge order such as charge-density waves, antiferro-type orbital order, the charge anisotropic tensor susceptibility and charge superlattices associated with either primary spin order or softened phonons.

摘要

自20世纪80年代以来,非共振和共振X射线磁衍射技术的进展为研究人员提供了一个强大的工具,用于探索磁性固体中的自旋、轨道和离子自由度,以及解析它们之间的相互作用。在这里,我们讨论了在高压(高于40 GPa)和低温(4 K)下对单晶样品进行X射线磁衍射的关键问题。我们展示了在压力下对非公度自旋密度波材料中的自旋翻转转变和公度全进全出反铁磁体的连续量子相变进行非共振和共振X射线磁衍射的案例研究。这两个案例都在第三代同步辐射源上使用了金刚石对顶砧技术。除了本文所讨论的反铁磁性的无热出现和演化的探索之外,这些技术还可以应用于研究弱电荷序的压力演化,如电荷密度波、反铁电型轨道序、电荷各向异性张量磁化率以及与主要自旋序或软化声子相关的电荷超晶格。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db31/6608628/cbaeb04a4949/m-06-00507-fig1.jpg

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