Department of Physics and Astronomy, University of California, Irvine, California 92697, USA.
Nat Commun. 2013;4:1348. doi: 10.1038/ncomms2340.
Non-abelian anyons--particles whose exchange noncommutatively transforms a system's quantum state--are widely sought for the exotic fundamental physics they harbour and for quantum computing applications. Numerous blueprints now exist for stabilizing the simplest type of non-anyon, defects binding Majorana modes, by interfacing widely available materials. Here we introduce a device fabricated from conventional fractional quantum Hall states and s-wave superconductors that supports exotic non-defects binding parafermionic zero modes, which generalize Majorana bound states. We show that these new modes can be experimentally identified (and distinguished from Majoranas) using Josephson measurements. We also provide a practical recipe for braiding parafermionic zero modes and show that they give rise to non-statistics. Interestingly, braiding in our setup produces a richer set of topologically protected operations when compared with the Majorana case. As a byproduct, we establish a new, experimentally realistic Majorana platform in weakly spin-orbit-coupled materials such as gallium arsenide.
非阿贝尔任意子——其交换非对易地改变系统量子态的粒子——因其所蕴含的奇异基础物理性质和量子计算应用而备受关注。现在已经存在许多通过界面广泛可用材料来稳定最简单类型的任意子,即束缚马约拉纳模的缺陷的蓝图。在这里,我们引入了一种由常规分数量子霍尔态和 s 波超导体制成的器件,该器件支持奇异非缺陷束缚准费米子零模,这些零模推广了马约拉纳束缚态。我们表明,这些新的模式可以通过约瑟夫森测量来实验识别(并与马约拉纳区分开来)。我们还提供了一种实用的准费米子零模辫子编织方法,并表明它们导致非统计性。有趣的是,与马约拉纳情况相比,我们的设置中的编织产生了一组更丰富的拓扑保护操作。作为副产品,我们在弱自旋轨道耦合材料(如砷化镓)中建立了一个新的、实验上现实的马约拉纳平台。