Ru - Pt化学取代对URu2Si2的电子调谐

G. Chappell, W. Nelson, D. Graf, R. Baumbach
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摘要

控制单胞体积和电子组成的研究有助于揭示在强相关电子系统URu2Si2中导致隐藏秩序和超导性的因素。例如,等电子调谐增加了f电子态和传导电子态之间的杂化(即施加压力和Ru→Fe/Os化学取代),1)将隐序转化为反铁磁性,2)破坏了超导性。非等电子化学取代的影响还不太清楚,但最近出现了几个统一的趋势,即化学取代向量定性地添加电子(例如,Ru→Rh/Ir和Si→P)。这包括1)隐藏秩序和超导性的快速破坏,2)基本近道晶格被保留但不包含有序状态的成分区域,以及3)大取代时复杂磁性的出现。为了评估这种观点的局限性,我们研究了系列U(Ru1−x Pt x)2Si2,其中Ru和Pt的d壳层彼此有很大的不同。磁化率、电阻率和热容测量意外地揭示了与其他电子掺杂系列具有显著相似之处的相图。这一结果强化了这种材料中电子掺杂所产生的准普遍影响的观点,我们预计对这些趋势的理解将有助于分离出隐藏秩序和超导性的基础因素。
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Electronic Tuning in URu2Si2 Through Ru to Pt Chemical Substitution
Studies that control the unit cell volume and electronic composition have been useful in revealing what factors lead to hidden order and superconductivity in the strongly correlated electron system URu2Si2. For example, isoelectronic tuning that increases the hybridization between the f and conduction electron states (i.e., applied pressure and Ru → Fe/Os chemical substitution) 1) converts hidden order into antiferromagnetism and 2) destroys the superconductivity. The impact of nonisoelectronic chemical substitution has been less clear, but several unifying trends have recently emerged for chemical substitution vectors that qualitatively add electrons (e.g., Ru → Rh/Ir and Si → P). This includes 1) the rapid destruction of hidden order and superconductivity, 2) composition regions where the underlying Kondo lattice is preserved but does not harbor an ordered state, and 3) the emergence of complex magnetism at large substitutions. In order to assess the limits of this perspective, we have investigated the series U(Ru1−x Pt x )2Si2 for x ≲ 0.19, where the Ru and Pt d-shells differ substantially from each other. Magnetic susceptibility, electrical resistivity, and heat capacity measurements unexpectedly reveal a phase diagram with notable similarities to those of other electron doping series. This result reinforces the viewpoint that there is a quasi-universal affect that results from electron doping in this material, and we anticipate that an understanding of these trends will be useful to isolate what factors are foundational for hidden order and superconductivity.
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