Suppr超能文献

量子化的马约拉纳电导。

Quantized Majorana conductance.

机构信息

QuTech and Kavli Institute of NanoScience, Delft University of Technology, 2600 GA Delft, The Netherlands.

Condensed Matter Theory Center and Joint Quantum Institute, Department of Physics, University of Maryland, College Park, Maryland 20742, USA.

出版信息

Nature. 2018 Apr 5;556(7699):74-79. doi: 10.1038/nature26142. Epub 2018 Mar 28.

Abstract

Majorana zero-modes-a type of localized quasiparticle-hold great promise for topological quantum computing. Tunnelling spectroscopy in electrical transport is the primary tool for identifying the presence of Majorana zero-modes, for instance as a zero-bias peak in differential conductance. The height of the Majorana zero-bias peak is predicted to be quantized at the universal conductance value of 2e/h at zero temperature (where e is the charge of an electron and h is the Planck constant), as a direct consequence of the famous Majorana symmetry in which a particle is its own antiparticle. The Majorana symmetry protects the quantization against disorder, interactions and variations in the tunnel coupling. Previous experiments, however, have mostly shown zero-bias peaks much smaller than 2e/h, with a recent observation of a peak height close to 2e/h. Here we report a quantized conductance plateau at 2e/h in the zero-bias conductance measured in indium antimonide semiconductor nanowires covered with an aluminium superconducting shell. The height of our zero-bias peak remains constant despite changing parameters such as the magnetic field and tunnel coupling, indicating that it is a quantized conductance plateau. We distinguish this quantized Majorana peak from possible non-Majorana origins by investigating its robustness to electric and magnetic fields as well as its temperature dependence. The observation of a quantized conductance plateau strongly supports the existence of Majorana zero-modes in the system, consequently paving the way for future braiding experiments that could lead to topological quantum computing.

摘要

马约拉纳零模——一种局域准粒子——在拓扑量子计算中具有巨大的应用前景。在电输运中,隧道谱学是识别马约拉纳零模存在的主要工具,例如在微分电导中出现零偏压峰。在零温度下(其中 e 是电子电荷,h 是普朗克常数),马约拉纳零偏压峰的高度预计会在普适电导值 2e/h 处被量子化,这是著名的马约拉纳对称性的直接结果,在这种对称性中,一个粒子就是它自己的反粒子。马约拉纳对称性保护这种量子化免受无序、相互作用和隧道耦合变化的影响。然而,以前的实验大多显示出的零偏压峰远小于 2e/h,最近的一个观察结果表明峰值接近 2e/h。在这里,我们报告了在覆盖有铝超导壳的铟锑半导体纳米线中测量的零偏压电导中,2e/h 的量化电导平台。尽管改变了磁场和隧道耦合等参数,我们的零偏压峰的高度仍然保持不变,这表明它是一个量化的电导平台。我们通过研究其对电场和磁场的鲁棒性以及其温度依赖性,将这个量化的马约拉纳峰与可能的非马约拉纳起源区分开来。观察到量化的电导平台强烈支持系统中存在马约拉纳零模,从而为未来可能导致拓扑量子计算的编织实验铺平了道路。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验