论文标题
紧张的SR2RUO4中单线 - 三重尺度分离的电子结构对应关系
Electronic structure correspondence of singlet-triplet scale separation in strained Sr2RuO4
论文作者
论文摘要
在大约1 \,k,\ ce {sr2ruo4}的温度下,经历了从普通费米液体到超导阶段的过渡。即使前者相对简单且知名度很高,甚至在研究了25年后,超导状态也不是。最近,发现可以通过应用单轴应变(直至临界菌株)来增强临界温度。在这项工作中,我们采取了“不稳定性”的方法,并寻求敏感性的分歧。这提供了一种公正的方式来区分竞争基态的趋势。我们表明,在未训练的化合物中,正常费米液相的单线和三重态不稳定性紧密。在驻留在所有轨道上的单轴应变电子下,有助于费米的所有轨道变得更加连贯,而ru- $ d_ {xy} $的电子变得更重,并且ru- $ d_ {xz,yz,yz} $的电子变得更轻。在此过程中,im \,$χ(\ mathbf {q},ω)$在不一致的矢量$ \ mathbf {q} {q} {=}(0.3,0.3,0)2π/a $上迅速增加。因此,三胞胎超导不稳定仍然是系统的滞后不稳定性,而单线不稳定性在应变下增强,从而导致这些竞争不稳定性之间的能量尺度分离很大。在很大的应变下,旋转密度波的不稳定性超过了超导。该分析依赖于高保真性,\ emph {ab intio}对单粒子性质和两粒子敏感性的描述,基于quasiparticle self onsensistent \ emph {gw}的近似值通过动态均值场理论增强。描述了这种方法,并通过与观察到的一颗粒子特性进行比较来确认其高保真度。
At a temperature of roughly 1\,K, \ce{Sr2RuO4} undergoes a transition from a normal Fermi liquid to a superconducting phase. Even while the former is relatively simple and well understood, the superconducting state is not even after 25 years of study. More recently it has been found that critical temperatures can be enhanced by application of uniaxial strain, up to a critical strain, after which it falls off. In this work, we take an `instability' approach and seek for divergences in susceptibilities. This provides an unbiased way to distinguish tendencies to competing ground states. We show that in the unstrained compound the singlet and triplet instabilities of the normal Fermi liquid phase are closely spaced. Under uniaxial strain electrons residing on all orbitals contributing to the Fermiology become more coherent while the electrons of Ru-$d_{xy}$ character become heavier and electrons of Ru-$d_{xz,yz}$ characters become lighter. In the process, Im\,$χ(\mathbf{q},ω)$ increases rapidly around the incommensurate vector $\mathbf{q}{=}(0.3,0.3,0)2π/a$ while it gets suppressed at all other commensurate vectors, in particular at $q{=}0$, which is essential for spin-triplet superconductivity. Thus the triplet superconducting instability remains the lagging instability of the system and the singlet instability enhances under strain, leading to a large energy-scale separation between these competing instabilities. At large strain an instability to a spin density wave overtakes the superconducting one. The analysis relies on a high-fidelity, \emph{ab initio} description of the one-particle properties and two-particle susceptibilities, based on the Quasiparticle Self-Consistent \emph{GW} approximation augmented by Dynamical Mean Field theory. This approach is described and its high fidelity confirmed by comparing to observed one- and two-particle properties.