Thermal fluctuations and vortex lattice structures in chiral p -wave superconductors: Robustness of double-quanta vortices

Fredrik Nicolai Krohg, E. Babaev, J. Garaud, H. H. Haugen, A. Sudbø
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Abstract

We use large-scale Monte-Carlo simulations to study thermal fluctuations in chiral $p$-wave superconductors in an applied magnetic field in three dimensions. We consider the thermal stability of previously predicted unusual double-quanta flux-line lattice ground states in such superconductors. In previous works it was shown that, neglecting thermal fluctuations, a chiral $p$-wave superconductor forms a hexagonal lattice of doubly-quantized vortices, except extremely close vicinity of $H_{c2}$ where double-quanta vortices split apart. We find dissociation of double-quanta vortices driven by thermal fluctuations. However, our calculations also show that the previous predictions of hexagonal doubly-quantized vortices, where thermal fluctuations were ignored, are very robust in the considered model.
手性纵波超导体中的热波动和涡旋晶格结构:双量子涡旋的鲁棒性
本文采用大规模蒙特卡罗模拟方法研究了手性p波超导体在外加磁场中的三维热波动。我们考虑了先前预测的这种超导体中不寻常的双量子通量线晶格基态的热稳定性。在以前的工作中,已经证明,忽略热波动,手性p波超导体形成双量子化涡的六角形晶格,除了在H_{c2}$的极近区域双量子化涡分裂。我们发现由热波动驱动的双量子涡解离。然而,我们的计算也表明,先前对六方双量子化漩涡的预测,在忽略热波动的情况下,在考虑的模型中是非常稳健的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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