论文标题
拓扑超导性和低维系统中的主要状态
Topological superconductivity and Majorana states in low-dimensional systems
论文作者
论文摘要
我们讨论了拓扑非平凡的超导阶段的特性及其在凝结物质中实现的条件以及识别主要结合状态(MBS)的原则。在外部磁场中具有自旋轨道耦合的众所周知的Kitaev链和超导纳米线(SW)模型,我们讨论了在非共线旋转顺序存在下实现MBS材料模型的模型。对于有限长度的SW,我们演示了一系列随着磁场的变化而发生的量子转变,并伴随着基态的费米昂奇偶校验的变化。磁化效应的相应异常行为可以用作识别MBS的工具。我们非常关注对包含拓扑非平凡材料的设备的传输特性的分析。详细讨论了研究由SW连接的Aharonov-Bohm环的电导率的结果。该设备的一个重要特征是当SW处于拓扑非平凡的相位时,Fano共振在磁场对磁场的依赖性中的外观。我们建立了这种共振的特征与最低能量SW状态的空间结构之间的关系。在三角形晶格上的$ T-J-V $模型的框架中确定了手性$ d+id $超导率和120度旋转订购阶段中MBS的条件。我们将电子电子相互作用考虑在讨论具有非共线旋转顺序的低维超导材料的拓扑不变时。展示了拓扑$ \ mathbb {z} $不变的区域中Majoraana模式的形成。确定了哈伯德费米恩集合中这些激发的空间结构。
We discuss the properties of topologically nontrivial superconducting phases and the conditions for their realization in condensed matter, and the principles for identifying Majorana bound states (MBSs). Along with the well-known Kitaev chain and superconducting nanowire (SW) models with spin-orbit coupling in an external magnetic field, we discuss models of quasi-2D materials in which MBSs are realized in the presence of noncollinear spin ordering. For finite-length SWs, we demonstrate a cascade of quantum transitions occurring with a change in the magnetic field, accompanied by a change in the fermion parity of the ground state. The corresponding anomalous behavior of the magnetocaloric effect can be used as a tool for identifying MBSs. We devote considerable attention to the analysis of the transport characteristics of devices that contain topologically nontrivial materials. The results of studying the conductance of an Aharonov-Bohm ring whose arms are connected by an SW are discussed in detail. An important feature of this device is the appearance of Fano resonances in the dependence of conductance on the magnetic field when the SW is in a topologically nontrivial phase. We establish a relation between the characteristics of such resonances and the spatial structure of the lowest-energy SW state. The conditions for the occurrence of an MBS in the phase of the coexistence of chiral $d+id$ superconductivity and 120-degree spin ordering are determined in the framework of the $t-J-V$ model on a triangular lattice. We take electron-electron interactions into account in discussing the topological invariants of low-dimensional superconducting materials with noncollinear spin ordering. The formation of Majorana modes in regions with an odd value of a topological $\mathbb{Z}$ invariant is demonstrated. The spatial structure of these excitations in the Hubbard fermion ensemble is determined.