论文标题
在三维非常规超导体中,热线拓扑和自旋共振模式的命运
Hot-lines topology and the fate of the spin resonance mode in three-dimensional unconventional superconductors
论文作者
论文摘要
在准二维(准2D)铜和铁的超导体中,超导性的发作伴随着接近附近反铁磁状态的波形的磁谱中的显着峰。通过自旋共振模式(即,理论上预测的具有符号变化间隙的准2D超导体预测的旋转1激子)的旋转1激子可以很好地描述这样的峰。但是,相同的理论表明,在具有球形费米表面的三维(3D)系统中,这种共振模式应不存在。这就提出了旋转共振模式的命运的问题,这些层次非常规超导体不是强烈各向异性的,例如某些重型屈光度化合物,并且可能是新发现的镍超导体NDNIO $ _2 $。在这里,我们使用随机相位轴测来计算使用$ d_ {x^2-y^2} $ - 波间隙对称性和波纹状圆柱状的fermi表面的3D超导体的动力自旋敏感性。通过改变平面外向各向异性$ T_Z/T $,我们证明了旋转共振模式的外观由热线的拓扑确定 - 即由磁波矢量连接的费米表面上的线。对于平面内抗磁性波矢量,热线以关键的$ t_z/t $值从开放线到封闭环的拓扑过渡。封闭的热线越过节点超导线,使自旋共振模式过度阻尼和不连贯。相比之下,对于平面外抗磁性波矢量,热线保持开放,并且旋转共振模式保持清晰。我们讨论了结果对自旋共振模式的平面外传感的实验含义,更普遍地,对于非常规超导体上的非弹性中子散射实验。
In the quasi-two-dimensional (quasi-2D) copper- and iron-based superconductors, the onset of superconductivity is accompanied by a prominent peak in the magnetic spectrum at momenta close to the wave-vector of the nearby antiferromagnetic state. Such a peak is well described in terms of a spin resonance mode, i.e., a spin-1 exciton theoretically predicted for quasi-2D superconductors with a sign-changing gap. The same theories, however, indicate that such a resonance mode should be absent in a three-dimensional (3D) system with a spherical Fermi surface. This raises the question of the fate of the spin resonance mode in layered unconventional superconductors that are not strongly anisotropic, such as certain heavy-fermion compounds and potentially the newly discovered nickelate superconductor NdNiO$_2$. Here, we use the random-phase-approximation to calculate the dynamical spin susceptibility of 3D superconductors with a $d_{x^2-y^2}$-wave gap symmetry and corrugated cylindrical-like Fermi surfaces. By varying the out-of-plane hopping anisotropy $t_z/t$, we demonstrate that the appearance of a spin resonance mode is determined by the topology of the hot lines -- i.e. lines on the Fermi surface that are connected by the magnetic wave-vector. For an in-plane antiferromagnetic wave-vector, the hot lines undergo a topological transition from open lines to closed loops at a critical $t_z/t$ value. The closed hot lines cross the nodal superconducting lines, making the spin resonance mode overdamped and incoherent. In contrast, for an out-of-plane antiferromagnetic wave-vector, the hot lines remain open and the spin resonance mode remains sharp. We discuss the experimental implications of our results for the out-of-plane dispersion of the spin resonance mode and, more generally, for inelastic neutron scattering experiments on unconventional superconductors.