论文标题
多组分超导体中的磁性转变
Magneto-topological transitions in multicomponent superconductors
论文作者
论文摘要
具有竞争性0-和$π$的耦合的多组件自旋超导体,如$ s _ {++} $和$ s _ {\ pm} $阶段,与时间倒置对称性的自发性破裂。我们证明,通过施加的通量确定的双连接的超导缸中超导电子的动能的修饰通常会驱动从手性超导状态转变为时间逆转对称的构型。通过Ginzburg-Landau方法研究了这种磁曲学诱导的转换,用于针对两种频段超导体的带相互作用和杂质散射的两种频段超导体,以中镜薄壁壁缸的形式研究了样品的情况。我们发现,磁通量的应用可以转换性手性$ s _ {\ pm}+是_ {++} $状态为$ s _ {\ pm} $配置,反之亦然,或者调整能量散布具有不等的配对放置的手性态。我们讨论了检测这些阶段和介观超导环中相应过渡的特征。
Multi-component spin-singlet superconductors with competing 0- and $π$-pairing couplings, as in $s_{++}$ and $s_{\pm}$ phases, are close to instabilities with a spontaneous breaking of time-reversal symmetry. We demonstrate that the modification of the kinetic energy of superconducting electrons in a doubly connected superconducting cylinder, determined by the applied flux, generally drives transitions from chiral superconducting states to configurations that are time-reversal symmetric. This magneto-topological-induced changeover is investigated by means of a Ginzburg-Landau approach for a two-band superconductor with interband interactions and impurity scattering investigated for the case of a sample in the form of a mesoscopically thin-walled cylinder. We find that the application of a magnetic flux can convert a chiral $s_{\pm}+is_{++}$ state into a $s_{\pm}$ configuration and vice versa or tune the energy splitting of chiral states having inequivalent pairing amplitudes. We discuss signatures for the detection of these phases and of the corresponding transitions in mesoscopic superconducting loops.