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

机译:过渡金属化合物中的螺旋磁序和压力感应超导

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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 3 d 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.
机译:磁性和超导基态可以竞争,合作和共存。 MnP提供了一种引人注目的且可能具有普遍意义的材料示例,其中超导性和磁性可能会交织在一起。使用基于同步加速器的非共振X射线磁衍射技术,我们揭示了MnP中的螺旋自旋顺序,并通过在金刚石砧座中进行测量将其压力演化跟踪到超导顺序。从磁致伸缩来看,随着压力增加电子动能,有序矩在量子相变处消失。自旋在无序相中保持局部状态,超导的促进可能是通过增强与残余螺旋自旋涨落的耦合以及它们对声子介导的超导的抑制而产生的。当MnP族中3d过渡金属化合物的螺距的螺距变化时,磁性基态在反铁磁体和铁磁体之间切换,从而为探测自旋涨落引起的超导性提供了额外的调谐参数。

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