铁基超导体的大规模、有序和可调谐马约拉纳零模晶格。

Geng Li, Meng Li, Xingtai Zhou, Hong-Jun Gao
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摘要

马约拉纳激发是固体材料中马约拉纳费米子的准粒子模拟。典型的例子是马约拉纳零模和弥散马约拉纳模。当用扫描隧道光谱探测时,前者表现为精确定位于零能量的明显电导峰,而后者表现为恒定或缓慢变化的态密度。mzm服从非阿贝尔统计,被认为是拓扑量子计算的基石,拓扑量子计算对环境噪声具有高度免疫力。现有的MZM平台包括在传统超导体之上的混合结构,如拓扑绝缘体、半导体纳米线或一维原子链,以及单一材料,如铁基超导体(ibs)和4Hb-TaS2。最近,在铁基超导体LiFeAs中也实现了有序和可调谐的MZM晶格,为未来的拓扑量子计算提供了可扩展和适用的平台。本文综述了近年来MZMs局部探针的研究进展。根据材料平台分类,我们从铁硫系超导体中的mzm开始,其中将讨论FeTe0.55Se0.45和(Li0.84Fe0.16)OHFeSe。然后,我们回顾了马约拉纳在铁镍超导体以及其他平台上的研究。我们进一步回顾了最近关于有序和可调谐MZM晶格的研究,表明应变是调节拓扑超导性的可行工具。最后,对马约拉纳的未来研究进行了总结和展望。
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Toward large-scale, ordered and tunable Majorana-zero-modes lattice on iron-based superconductors.

Majorana excitations are the quasiparticle analog of Majorana fermions in solid materials. Typical examples are the Majorana zero modes (MZMs) and the dispersing Majorana modes. When probed by scanning tunneling spectroscopy, the former manifest as a pronounced conductance peak locating precisely at zero-energy, while the latter behaves as constant or slowly varying density of states. The MZMs obey non-abelian statistics and are believed to be building blocks for topological quantum computing, which is highly immune to the environmental noise. Existing MZM platforms include hybrid structures such as topological insulator, semiconducting nanowire or 1D atomic chains on top of a conventional superconductor, and single materials such as the iron-based superconductors (IBSs) and 4Hb-TaS2. Very recently, ordered and tunable MZM lattice has also been realized in IBS LiFeAs, providing a scalable and applicable platform for future topological quantum computation. In this review, we present an overview of the recent local probe studies on MZMs. Classified by the material platforms, we start with the MZMs in the iron-chalcogenide superconductors where FeTe0.55Se0.45and (Li0.84Fe0.16)OHFeSe will be discussed. We then review the Majorana research in the iron-pnictide superconductors as well as other platforms beyond the IBSs. We further review recent works on ordered and tunable MZM lattice, showing that strain is a feasible tool to tune the topological superconductivity. Finally, we give our summary and perspective on future Majorana research.

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