论文标题

用于拓扑量子计算的主要纳米线

Majorana nanowires for topological quantum computation

论文作者

Marra, Pasquale

论文摘要

主要结合状态是位于拓扑非平凡超导体边界的准粒子激发。它们是零能量,电荷中性,颗粒 - 孔对称和空间分离的末端模式,在拓扑上受到超导状态的粒子孔对称性的保护。由于其拓扑性质,它们对局部扰动非常有力,并且在理想的环境中,它们没有腐烂。此外,与普通的费米和玻色子不同,Majorana模式的绝热交换是非交换的,即交换两个或多个Majoragan模式的结果取决于进行交换的顺序。这些特性使其成为实现拓扑量子计算机的理想候选者。在本教程中,我将对量子纳米线中的一维拓扑超导体和主要模式进行教学评论。我将概述Kitaev模型和更现实的Oreg-Lutchyn模型,讨论Majorana模式的实验签名,并强调它们在拓扑量子计算领域的相关性。本教程可以作为该领域新手的研究生和研究人员的教学和相对独立的介绍,并概述了该领域的当前最新技术和专家参考指南。

Majorana bound states are quasiparticle excitations localized at the boundaries of a topologically nontrivial superconductor. They are zero-energy, charge-neutral, particle-hole symmetric, and spatially-separated end modes which are topologically protected by the particle-hole symmetry of the superconducting state. Due to their topological nature, they are robust against local perturbations and, in an ideal environment, free from decoherence. Furthermore, unlike ordinary fermions and bosons, the adiabatic exchange of Majorana modes is noncommutative, i.e., the outcome of exchanging two or more Majorana modes depends on the order in which exchanges are performed. These properties make them ideal candidates for the realization of topological quantum computers. In this tutorial, I will present a pedagogical review of 1D topological superconductors and Majorana modes in quantum nanowires. I will give an overview of the Kitaev model and the more realistic Oreg-Lutchyn model, discuss the experimental signatures of Majorana modes, and highlight their relevance in the field of topological quantum computation. This tutorial may serve as a pedagogical and relatively self-contained introduction for graduate students and researchers new to the field, as well as an overview of the current state-of-the-art of the field and a reference guide to specialists.

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