论文标题

由拓扑超导体涡流驱动的独特量子杂质状态

Unique quantum impurity states driven by a vortex in topological superconductors

论文作者

Su, Wei, Wang, Rui, Chen, Changfeng, Wang, Xiaoqun

论文摘要

拓扑超导体中磁杂质和涡流的相互作用具有基本兴趣,对实施量子计算的主要影响。与系统中的杂质相互作用,包括Majorana零模式(MZM),Caroli de Gennes Matricon(CDGM)州以及形成Cooper Pairs的电子批量状态,这使得杂质在拓扑超级传统中难以固定涡流状态。在这里,我们基于广义映射方案和密度 - 矩阵重归其化组(DMRG)方法提出了问题的准确解决方案。我们确定与已建立的Yu-Shiba-Rusinov(YSR)状态不同的间隙状态。 The newly found in-gap physics is driven by three prominent mechanisms: (i) the coupling of impurity and bulk states leading to competition between Kondo screening and Cooper pairing, resulting in a singlet-doublet quantum phase transition, (ii) the coupling of impurity and CdGM states introducing an effective Zeeman splitting to the doublet state, and (iii) the coupling of impurity and MZM将单线双线过渡变成跨界。这些机制合作产生了独特的旋转状态局部密度。尽管有MZM,但仍会产生一个稳健的能量峰值,高度可比,但与MZM相反。这些结果表明新的新兴物理学,并提供见解以阐明有趣的实验现象。

The interplay of magnetic impurity and vortex in a topological superconductor is of fundamental interest with major implications for implementing quantum computation. There are multiple degrees of freedom interacting with the impurity in the system, including the Majorana zero mode (MZM), the Caroli de Gennes Matricon (CdGM) states, and the electron bulk states that form Cooper pairs, which makes the impurity pinned vortex state elusive to date in topological superconductors. Here, we present an accurate solution of the problem, based on a generalized mapping scheme and the density-matrix renormalization group (DMRG) method. We identify in-gap states that are distinct from the established Yu-Shiba-Rusinov (YSR) states. The newly found in-gap physics is driven by three prominent mechanisms: (i) the coupling of impurity and bulk states leading to competition between Kondo screening and Cooper pairing, resulting in a singlet-doublet quantum phase transition, (ii) the coupling of impurity and CdGM states introducing an effective Zeeman splitting to the doublet state, and (iii) the coupling of impurity and MZM turning the singlet-doublet transition into a crossover. These mechanisms cooperatively produce a unique spin-resolved local density of states. Despite the MZM, a robust nearly zero-energy peak is generated, with comparable height but opposite spin polarization as that of the MZM. These results signify novel emergent physics and offer insights to elucidate intriguing experimental phenomena.

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