Robustness of gauge-invariant dynamics against defects in ultracold-atom gauge theories

Jad C. Halimeh, R. Ott, I. McCulloch, Bingda Yang, P. Hauke
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引用次数: 13

Abstract

Recent years have seen strong progress in quantum simulation of gauge-theory dynamics using ultracold-atom experiments. A principal challenge in these efforts is the certification of gauge invariance, which has recently been realized in [B.~Yang et al., arXiv:2003.08945]. One major but poorly investigated experimental source of gauge-invariance violation is an imperfect preparation of the initial state. Using the time-dependent density-matrix renormalization group, we analyze the robustness of gauge-invariant dynamics against potential preparation defects in the above ultracold-atom implementation of a $\mathrm{U}(1)$ gauge theory. We find defects related to an erroneous initialization of matter fields to be innocuous, as the associated gauge-invariance violation remains strongly localized throughout the time evolution. A defect due to faulty initialization of the gauge field leads to a mild proliferation of the associated violation. Furthermore, we characterize the influence of immobile and mobile defects by monitoring the spread of entanglement entropy. Overall, our results indicate that the aforementioned experimental realization exhibits a high level of fidelity in the gauge invariance of its dynamics at all evolution times. Our work provides strong evidence that ultracold-atom setups can serve as an extremely reliable framework for the quantum simulation of gauge-theory dynamics.
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规范不变动力学对超冷原子规范理论缺陷的鲁棒性
近年来,利用超冷原子实验对量规理论动力学进行量子模拟取得了很大进展。这些努力的一个主要挑战是规范不变性的证明,最近在[B]中已经实现。[杨等,中国生物工程学报,2003.08945]。一个主要的,但很少研究的实验源的规范不变性违反是一个不完善的初始状态的准备。利用时变密度矩阵重整化群,我们分析了在上述$\ mathm {U}(1)$规范理论的超冷原子实现中,规范不变动力学对潜在制备缺陷的鲁棒性。我们发现与物质场错误初始化相关的缺陷是无害的,因为相关的规范不变性违反在整个时间演化过程中仍然强烈定位。由于规范域初始化错误而导致的缺陷会导致相关违例的轻微扩散。此外,我们还通过监测纠缠熵的扩散来表征固定缺陷和移动缺陷的影响。总体而言,我们的结果表明,上述实验实现在其所有演化时间的动力学的规范不变性中表现出高水平的保真度。我们的工作提供了强有力的证据,证明超冷原子装置可以作为量规理论动力学量子模拟的极其可靠的框架。
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