论文标题

超导二极管效应和非偏置过渡线

Superconducting diode effect and nonreciprocal transition lines

论文作者

Daido, Akito, Yanase, Youichi

论文摘要

超导体中的非进取心引起了极大的兴趣,因为其重要性及其对工程的潜在适用性。在本文中,我们概括了先前的固有超导二极管效应(SDE)的理论,并在超急流下阐明了其与过渡线的非逆流关系的关系。我们通过使用现象学金茨堡 - 兰道理论得出了固有SDE的一般公式,从而表明SDE取决于磁场和有效的抗对称性自旋轨耦合在Ginzburg-Landau系数中定义的有效抗对称性自旋铲耦合。获得的公式提供了一个方便的标准以获得有限的SDE。我们还使用平均场理论研究了$ s $ - 波和$ d $ - 波超导体的SDE和非偏置相变。可以确定,SDE的符号逆转并伴随着螺旋超导的跨界,无论系统细节如何,都是一般特征。我们研究了超电流下温度磁场场图中的相变线,并澄清SDE的符号反转通常伴随着正流和负电流方向下的过渡线的交叉点。此外,在电流的中等强度下,超电流下的超导阶段甚至会重新进入,这意味着电流引起的一阶相变。我们的发现将电流建立为控制参数和强大的探测器,以研究与有限摩托车库珀对相关的超导特性。

Nonreciprocity in superconductors is attracting much interest owing to its fundamental importance as well as its potential applicability to engineering. In this paper, we generalize the previous theories of the intrinsic superconducting diode effect (SDE) and microscopically elucidate its relationship with the nonreciprocity of the transition lines under supercurrent. We derive a general formula for the intrinsic SDE by using the phenomenological Ginzburg-Landau theory and thereby show that the SDE is determined by the relative angle between the magnetic field and an effective anti-symmetric spin-orbit coupling defined from the Ginzburg-Landau coefficients. The obtained formula offers a convenient criterion to obtain a finite SDE. We also study the SDE and the nonreciprocal phase transitions of the $s$-wave and $d$-wave superconductors by using the mean-field theory. It is established that the sign reversal of the SDE accompanied by the crossover of the helical superconductivity is a general feature irrespective of the system details. We study the phase transition lines in the temperature-magnetic-field phase diagram under the supercurrent, and clarify that the sign reversal of the SDE generally accompanies the crossings of the transition lines under positive and negative current directions. Furthermore, the superconducting phases under the supercurrent even become re-entrant under moderate strength of the electric current, implying the current-induced first-order phase transitions. Our findings establish the electric current as the control parameter and the powerful probe to study the superconducting properties related to the finite-momentum Cooper pairs.

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