晶格规范理论中动态量子相变的量子计算和纠缠层析成像

IF 9.3 Q1 PHYSICS, APPLIED
N. Mueller, Joseph Carolan, And J. N. Connelly, Z. Davoudi, E. Dumitrescu, Kubra Yeter-Aydeniz
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引用次数: 15

摘要

远离平衡态的强耦合规范理论可能表现出独特的特征,可以阐明早期宇宙以及强子和离子对撞机的物理学。用经典模拟方法研究实时现象具有挑战性,但这是量子模拟的自然应用。为了证明这一前景,我们使用IonQ公司的捕获离子量子计算机,对简单晶格规范理论(Schwinger模型)的非平衡态进行了量子计算和纠缠层析成像。作为近期设备的理想目标,最近预测[Zache等人,物理学。通过制备、猝灭和跟踪后续非平衡动力学,研究了该模型中的动态量子相变:i)重叠回声信号动态转换,ii)具有底层拓扑性质的非等时间相关函数,以及iii)非平衡态的纠缠结构,包括纠缠哈密顿量。这些结果构成了在量子计算机上对晶格规范理论中动态量子相变的第一次观察,并且是利用量子技术研究核物理和高能物理拓扑现象的第一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Quantum Computation of Dynamical Quantum Phase Transitions and Entanglement Tomography in a Lattice Gauge Theory

Quantum Computation of Dynamical Quantum Phase Transitions and Entanglement Tomography in a Lattice Gauge Theory
Strongly-coupled gauge theories far from equilibrium may exhibit unique features that could illuminate the physics of the early universe and of hadron and ion colliders. Studying real-time phenomena has proven challenging with classical-simulation methods, but is a natural application of quantum simulation. To demonstrate this prospect, we quantum compute non-equal time correlation functions and perform entanglement tomography of non-equilibrium states of a simple lattice gauge theory, the Schwinger model, using a trapped-ion quantum computer by IonQ Inc. As an ideal target for near-term devices, a recently-predicted [Zache et al., Phys. Rev. Lett. 122, 050403 (2019)] dynamical quantum phase transition in this model is studied by preparing, quenching, and tracking the subsequent non-equilibrium dynamics in three ways: i) overlap echos signaling dynamical transitions, ii) non-equal time correlation functions with an underlying topological nature, and iii) the entanglement structure of non-equilibrium states, including entanglement Hamiltonians. These results constitute the first observation of a dynamical quantum phase transition in a lattice gauge theory on a quantum computer, and are a first step toward investigating topological phenomena in nuclear and high-energy physics using quantum technologies.
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CiteScore
14.60
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