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过渡金属化合物中的螺旋磁有序和压力诱导超导性。

Spiral magnetic order and pressure-induced superconductivity in transition metal compounds.

机构信息

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

The Advanced Photon Source, Argonne National Laboratory, Argonne, Illinois 60439, USA.

出版信息

Nat Commun. 2016 Oct 6;7:13037. doi: 10.1038/ncomms13037.

Abstract

Magnetic and superconducting ground states can compete, cooperate and coexist. MnP provides a compelling and potentially generalizable example of a material where superconductivity and magnetism may be intertwined. Using a synchrotron-based non-resonant X-ray magnetic diffraction technique, we reveal a spiral spin order in MnP and trace its pressure evolution towards superconducting order via measurements in a diamond anvil cell. Judging from the magnetostriction, ordered moments vanish at the quantum phase transition as pressure increases the electron kinetic energy. Spins remain local in the disordered phase, and the promotion of superconductivity is likely to emerge from an enhanced coupling to residual spiral spin fluctuations and their concomitant suppression of phonon-mediated superconductivity. As the pitch of the spiral order varies across the 3d transition metal compounds in the MnP family, the magnetic ground state switches between antiferromagnet and ferromagnet, providing an additional tuning parameter in probing spin-fluctuation-induced superconductivity.

摘要

磁有序和超导态可以相互竞争、合作和共存。MnP 为超导和磁有序可能相互交织的材料提供了一个引人注目的、潜在的普遍范例。我们使用基于同步加速器的非共振 X 射线磁衍射技术,揭示了 MnP 中的螺旋自旋有序,并通过在金刚石对顶砧中进行测量,追踪了其在超导有序方向上的压力演化。从磁致伸缩来看,随着压力增加电子动能,有序磁矩在量子相变时消失。自旋在无序相中保持局部,超导的促进可能来自于与残余螺旋自旋涨落的增强耦合及其对声子介导超导的抑制。由于 MnP 族中的 3d 过渡金属化合物中螺旋有序的螺距不同,磁基态在反铁磁和铁磁之间切换,为探测自旋涨落诱导的超导提供了一个额外的调谐参数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/271b/5059728/04f32a8a2984/ncomms13037-f1.jpg

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