A new twist on the Majorana surface code: Bosonic and fermionic defects for fault-tolerant quantum computation

IF 5.1 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Quantum Pub Date : 2024-07-10 DOI:10.22331/q-2024-07-10-1400
Campbell McLauchlan, Benjamin Béri
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Abstract

Majorana zero modes (MZMs) are promising candidates for topologically-protected quantum computing hardware, however their large-scale use will likely require quantum error correction. Majorana surface codes (MSCs) have been proposed to achieve this. However, many MSC properties remain unexplored. We present a unified framework for MSC "twist defects" $\unicode{x2013}$ anyon-like objects encoding quantum information. We show that twist defects in MSCs can encode twice the amount of topologically protected information as in qubit-based codes or other MSC encoding schemes. This is due to twists encoding both logical qubits and "logical MZMs," with the latter enhancing the protection microscopic MZMs can offer. We explain how to perform universal computation with logical qubits and logical MZMs while potentially using far fewer resources than in other MSC schemes. All Clifford gates can be implemented on logical qubits by braiding twist defects. We introduce lattice-surgery-based techniques for computing with logical MZMs and logical qubits, achieving the effect of Clifford gates with zero time overhead. We also show that logical MZMs may result in improved spatial overheads for sufficiently low rates of quasi-particle poisoning. Finally, we introduce a novel MSC analogue of transversal gates that achieves encoded Clifford gates in small codes by braiding microscopic MZMs. MSC twist defects thus open new paths towards fault-tolerant quantum computation.
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马约拉纳表面代码的新转折:用于容错量子计算的玻色和费米子缺陷
马约拉纳零模(Majorana zero modes,MZMs)是拓扑保护量子计算硬件的理想候选者,但其大规模使用可能需要量子纠错。为了实现这一目标,有人提出了马约拉纳表面代码(MSC)。然而,MSC 的许多特性仍有待探索。我们为 MSC 的 "扭曲缺陷 "提出了一个统一的框架。我们证明,与基于量子比特的编码或其他 MSC 编码方案相比,MSC 中的扭曲缺陷可以编码两倍数量的拓扑保护信息。这是由于扭曲同时编码了逻辑量子比特和 "逻辑 MZM",而后者增强了微观 MZM 所能提供的保护。我们解释了如何利用逻辑量子比特和逻辑 MZM 进行通用计算,同时可能使用比其他 MSC 方案少得多的资源。所有克利福德门都可以通过编织扭曲缺陷在逻辑量子比特上实现。我们引入了基于晶格手术的技术,利用逻辑 MZM 和逻辑量子比特进行计算,以零时间开销实现克利福德门的效果。我们还证明,在准粒子中毒率足够低的情况下,逻辑 MZM 可改善空间开销。最后,我们介绍了横向门的新型 MSC 类似物,通过编织微观 MZM,在小型代码中实现了编码克利福德门。 因此,MSC 扭转缺陷为容错量子计算开辟了新的道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Quantum
Quantum Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
9.20
自引率
10.90%
发文量
241
审稿时长
16 weeks
期刊介绍: Quantum is an open-access peer-reviewed journal for quantum science and related fields. Quantum is non-profit and community-run: an effort by researchers and for researchers to make science more open and publishing more transparent and efficient.
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