论文标题

在冷原子量子模拟器中调整拓扑$θ$ - 角度的理论

Tuning the Topological $θ$-Angle in Cold-Atom Quantum Simulators of Gauge Theories

论文作者

Halimeh, Jad C., McCulloch, Ian P., Yang, Bing, Hauke, Philipp

论文摘要

尺度理论中的拓扑$θ$ - 激进产生了一系列基本现象,包括违反电荷 - 平衡(CP)对称性,动力学拓扑转换和限制性的转变。同时,它对理论研究提出了重大挑战,因为它暗示了数值模拟中的标志问题。模拟量子模拟器以这种拓扑术语打开了有希望的量子多体系统的前景,但与其数字同行相反,他们尚未证明控制$θ$ - 角的能力。在这里,我们演示了如何使用$ \ mathrm {u}(1)$ gauge对称性添加到原型理论中,这是一个空间维度的量子电动力学的离散版本。如我们所示,该模型可以在具有三个不同空间周期的光学超晶格中的单物种玻色模型中实验实验,因此仅需要标准的实验资源。通过从时间依赖性密度矩阵重新归一化组方法和精确对角线化获得的数值计算,我们基于模型系统,并说明如何观察到$θ$ - term引起的显着效应。这些包括电荷限制,量子多体疤痕的削弱以及由于CP对称性的明显破坏而导致Coleman的相变的消失。这项工作为研究大规模冷原子量子模拟器的拓扑规方法术语的丰富物理学打开了大门。

The topological $θ$-angle in gauge theories engenders a series of fundamental phenomena, including violations of charge-parity (CP) symmetry, dynamical topological transitions, and confinement--deconfinement transitions. At the same time, it poses major challenges for theoretical studies, as it implies a sign problem in numerical simulations. Analog quantum simulators open the promising prospect of treating quantum many-body systems with such topological terms, but, contrary to their digital counterparts, they have not yet demonstrated the capacity to control the $θ$-angle. Here, we demonstrate how a tunable topological $θ$-term can be added to a prototype theory with $\mathrm{U}(1)$ gauge symmetry, a discretized version of quantum electrodynamics in one spatial dimension. As we show, the model can be realized experimentally in a single-species Bose--Hubbard model in an optical superlattice with three different spatial periods, thus requiring only standard experimental resources. Through numerical calculations obtained from the time-dependent density matrix renormalization group method and exact diagonalization, we benchmark the model system, and illustrate how salient effects due to the $θ$-term can be observed. These include charge confinement, the weakening of quantum many-body scarring, as well as the disappearance of Coleman's phase transition due to explicit breaking of CP symmetry. This work opens the door towards studying the rich physics of topological gauge-theory terms in large-scale cold-atom quantum simulators.

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