Chen Yajiang, Hong-Yu Wu, Peeters F M, Shanenko A A
Department of Electronics, Lishui University, 323000 Zhejiang, People's Republic of China.
J Phys Condens Matter. 2015 Apr 1;27(12):125701. doi: 10.1088/0953-8984/27/12/125701. Epub 2015 Mar 9.
Since the 1960's it has been well known that the basic superconductive quantities can exhibit oscillations as functions of the thickness (diameter) in superconducting nanofilms (nanowires) due to the size quantization of the electronic spectrum. However, very little is known about the effects of quantum confinement on the microscopic properties of vortices. Based on a numerical solution to the Bogoliubov-de Gennes equations, we study the quantum-size oscillations of the vortex core resulting from the sequential interchange of the Kramer-Pesch and anti-Kramer-Pesch regimes with changing nanocylinder radius. The physics behind the anti-Kramer-Pesch anomaly is displayed by utilizing a semi-analytical Anderson approximate solution. We also demonstrate that the anti-Kramer-Pesch vortex core is robust against thermal smearing and results in a distinctive two-maxima structure in the local density of states, which can be used to identify the existence of the anti-Kramer-Pesch vortex.
自20世纪60年代以来,众所周知,由于电子能谱的尺寸量子化,基本超导量在超导纳米薄膜(纳米线)中可表现出作为厚度(直径)函数的振荡。然而,关于量子限制对涡旋微观性质的影响却知之甚少。基于对博戈留波夫 - 德热纳方程的数值解,我们研究了随着纳米圆柱半径变化,克莱默 - 佩施和反克莱默 - 佩施 regime 顺序互换导致的涡旋核的量子尺寸振荡。利用半解析安德森近似解展示了反克莱默 - 佩施反常背后的物理机制。我们还证明了反克莱默 - 佩施涡旋核对热展宽具有鲁棒性,并在局域态密度中产生独特的双极大结构,这可用于识别反克莱默 - 佩施涡旋的存在。