Department of Physics & NANOlab Center of Excellence, University of Antwerp, Groenenborgerlaan 171, B-2020 Antwerp, Belgium.
J Phys Condens Matter. 2023 May 11;35(32). doi: 10.1088/1361-648X/acd217.
We determine the energy of an interface between a multiband superconducting and a normal half-space, in presence of an applied magnetic field, based on a multiband Ginzburg-Landau (GL) approach. We obtain that the multiband surface energy is fully determined by the critical temperature, electronic densities of states, and superconducting gap functions associated with the different band condensates. This furthermore yields an expression for the thermodynamic critical magnetic field, in presence of an arbitrary number of contributing bands. Subsequently, we investigate the sign of the surface energy as a function of material parameters, through numerical solution of the GL equations. Here, we consider two distinct cases: (i) standard multiband superconductors with attractive interactions, and (ii) a three-band superconductor with a chiral ground state with phase frustration, arising from repulsive interband interactions. Furthermore, we apply this approach to several prime examples of multiband superconductors, such as metallic hydrogen and MgB, based on microscopic parameters obtained from first-principles calculations.
我们基于多带格林函数方法,确定了在存在外加磁场的情况下,多带超导相与正常半空间之间的界面能。我们发现,多带表面能完全由临界温度、电子态密度和与不同带凝聚态相关的超导能隙函数决定。这进一步给出了在任意数量贡献带存在下的热力学临界磁场的表达式。随后,我们通过格林函数方程的数值解,研究了表面能随材料参数的变化情况。这里,我们考虑两种不同的情况:(i)具有吸引力相互作用的标准多带超导体,以及(ii)具有来自排斥带间相互作用的手征基态相位受挫的三带超导体。此外,我们将这种方法应用于几种多带超导体的典型例子,如金属氢和 MgB,这些例子基于第一性原理计算得到的微观参数。