论文标题
过渡金属二分法中的配对密度波不稳定性的弱耦合理论
Weak-Coupling Theory of Pair Density-Wave Instabilities in Transition Metal Dichalcogenides
论文作者
论文摘要
库珀对具有有限的动量的可能性实现对阶段的可能性(PDW)阶段,提出了一个有趣的挑战,该挑战已在各种系统中进行了研究。在常规的超导体中,只有当外部磁场抬高费米表面的自旋变性时,才有可能在不稳定的动量下配对形成。在这里,我们研究了第二种可能性,可能与过渡金属二分元素相关,其中费米表面由布利鲁因区域的$ \ pm k $点的一对口袋组成,以及$γ$点的中央口袋。在这三个口袋相同的限制中,配对易感性在非零波动媒介$ \ pm \ pm \ pm \ mathbf {k} $上具有对数差异,从而可以对PDW不稳定性进行弱耦合分析。我们发现,只要存在$γ$口袋,排斥电子相互作用结合在一起,在单线和三重态PDW通道中产生有效的有吸引力的相互作用。由于这些PDW通道从均匀的超导通道解镜,因此它们可以成为系统的主要非常规配对的不稳定性。求解线性差距方程后,我们发现PDW的不稳定性与$ \ pm k $ k $口袋的小型三角形翘曲以及$γ$和$γ$和$ \ pm k $ cockets之间的小小结构相似,这在Zeeman磁场以类似的方式影响PDW的过渡会影响统一的超级尺寸的过渡。我们还通过Momenta $ \ pm \ Mathbf {K} $来得出PDW差距的Ginzburg-Landau自由能,分析了FF-type和Lo-type PDW接地状态的出现条件和后果。我们在每个基态下对诱导订单的分类揭示了异常阶段,包括奇数频率 - $ 2E $ $ $ $ $超过pdw。
The possibility of realizing pair density wave (PDW) phases, in which Cooper pairs have a finite momentum, presents an interesting challenge that has been studied in a wide variety of systems. In conventional superconductors, this is only possible when external fields lift the spin degeneracy of the Fermi surface, leading to pair formation at an incommensurate momentum. Here, we study a second possibility, potentially relevant to transition metal dichalcogenides, in which the Fermi surface consists of a pair of pockets centered at the $\pm K$ points of the Brillouin zone as well as a central pocket at the $Γ$ point. In the limit where these three pockets are identical, the pairing susceptibility has a logarithmic divergence at the non-zero wave-vectors $\pm \mathbf{K}$, allowing for a weak-coupling analysis of the PDW instability. We find that repulsive electronic interactions combine to yield effective attractive interactions in the singlet and triplet PDW channels, as long as the $Γ$ pocket is present. Because these PDW channels decouple from the uniform superconducting channel, they can become the leading unconventional pairing instability of the system. Upon solving the linearized gap equations, we find that the PDW instability is robust against small trigonal warping of the $\pm K$ pockets and small detuning between the $Γ$ and $\pm K$ pockets, which affect the PDW transition in a similar way as the Zeeman magnetic field affects the uniform superconducting transition. We also derive the Ginzburg-Landau free energy for the PDW gaps with momenta $\pm \mathbf{K}$, analyzing the conditions for and consequences of the emergence of FF-type and LO-type PDW ground states. Our classification of the induced orders in each ground state reveals unusual phases, including an odd-frequency charge-$2e$ superconductor in the LO-type PDW.