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通过局部纠错增强拓扑序的检测

Enhancing detection of topological order by local error correction.

作者信息

Cong Iris, Maskara Nishad, Tran Minh C, Pichler Hannes, Semeghini Giulia, Yelin Susanne F, Choi Soonwon, Lukin Mikhail D

机构信息

Department of Physics, Harvard University, Cambridge, MA, 02138, USA.

Center for Theoretical Physics, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.

出版信息

Nat Commun. 2024 Feb 20;15(1):1527. doi: 10.1038/s41467-024-45584-6.

Abstract

The exploration of topologically-ordered states of matter is a long-standing goal at the interface of several subfields of the physical sciences. Such states feature intriguing physical properties such as long-range entanglement, emergent gauge fields and non-local correlations, and can aid in realization of scalable fault-tolerant quantum computation. However, these same features also make creation, detection, and characterization of topologically-ordered states particularly challenging. Motivated by recent experimental demonstrations, we introduce a paradigm for quantifying topological states-locally error-corrected decoration (LED)-by combining methods of error correction with ideas of renormalization-group flow. Our approach allows for efficient and robust identification of topological order, and is applicable in the presence of incoherent noise sources, making it particularly suitable for realistic experiments. We demonstrate the power of LED using numerical simulations of the toric code under a variety of perturbations. We subsequently apply it to an experimental realization, providing new insights into a quantum spin liquid created on a Rydberg-atom simulator. Finally, we extend LED to generic topological phases, including those with non-abelian order.

摘要

对拓扑有序物质态的探索是物理科学几个子领域交叉处长期以来的目标。这类物态具有诸如长程纠缠、涌现规范场和非局域关联等引人入胜的物理性质,并且有助于实现可扩展的容错量子计算。然而,这些相同的特性也使得拓扑有序态的创建、检测和表征极具挑战性。受近期实验演示的启发,我们通过将纠错方法与重整化群流的思想相结合,引入了一种用于量化拓扑态的范式——局部纠错装饰(LED)。我们的方法能够高效且稳健地识别拓扑序,并且适用于存在非相干噪声源的情况,这使其特别适合实际实验。我们通过对各种微扰下的环面码进行数值模拟来展示LED的功效。随后,我们将其应用于一个实验实现,为在里德堡原子模拟器上创建的量子自旋液体提供了新的见解。最后,我们将LED扩展到一般的拓扑相,包括那些具有非阿贝尔序的相。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f043/10879205/45f0838d7a24/41467_2024_45584_Fig1_HTML.jpg

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