论文标题
在轨道分离的双层中的超导相关阶段
Superconducting Kondo phase in an orbitally-separated bilayer
论文作者
论文摘要
在剧烈的争论中,重屈光度材料中超导性的性质是一个主题,控制这种多体状态对于最终理解至关重要。在这里,我们通过研究额外的金属层对近孢子质的顶部的影响并允许在前者配对来研究近端效应如何改变这种现象。我们使用平均场方法分析了带有现场哈伯德相互作用的双层亲块晶格模型,即$ -U $。对于$ u = 0 $,我们注意到由于多轨道单线谐振组合的组合,状态密度发生了巨大变化。它在半填充的情况下破坏了著名的丘多绝缘子,导致金属基态,从而通过传导电子的极化增强了抗铁磁性。对于$ u \ u \ neq 0 $,是一个超导近传式状态,以零温度设置为零温度,发生了涉及$ f $ - 电子的非常规配对振幅。我们确定仅由于附加层的邻近效应,这种非凡的特征才可能。在有限温度下,我们发现关键的超导温度$ t_c $随着层间杂交而降低。我们还确定,零温度超导振幅跟踪$ t_c $,它回想起超导差距和$ t_c $之间的BCS比例。
The nature of superconductivity in heavy-fermion materials is a subject under intense debate, and controlling this many-body state is central for its eventual understanding. Here, we examine how proximity effects may change this phenomenon, by investigating the effects of an additional metallic layer on the top of a Kondo-lattice, and allowing for pairing in the former. We analyze a bilayer Kondo Lattice Model with an on-site Hubbard interaction, $-U$, on the additional layer, using a mean-field approach. For $U=0$, we notice a drastic change in the density-of-states due to multiple-orbital singlet resonating combinations. It destroys the well-known Kondo insulator at half filling, leading to a metallic ground state, which, in turn, enhances antiferromagnetism through the polarization of the conduction electrons. For $U\neq 0$, a superconducting Kondo state sets in at zero temperature, with the occurrence of unconventional pairing amplitudes involving $f$-electrons. We establish that this remarkable feature is only possible due to the proximity effects of the additional layer. At finite temperatures we find that the critical superconducting temperature, $T_c$, decreases with the interlayer hybridization. We have also established that a zero temperature superconducting amplitude tracks $T_c$, which reminisces the BCS proportionality between the superconducting gap and $T_c$.