Schmitt Markus, Rams Marek M, Dziarmaga Jacek, Heyl Markus, Zurek Wojciech H
Institute for Theoretical Physics, University of Cologne, 50937 Cologne, Germany.
Institute of Theoretical Physics, Jagiellonian University, Łojasiewicza 11, PL-30348 Kraków, Poland.
Sci Adv. 2022 Sep 16;8(37):eabl6850. doi: 10.1126/sciadv.abl6850.
The quantum Kibble-Zurek mechanism (QKZM) predicts universal dynamical behavior near the quantum phase transitions (QPTs). It is now well understood for the one-dimensional quantum matter. Higher-dimensional systems, however, remain a challenge, complicated by the fundamentally different character of the associated QPTs and their underlying conformal field theories. In this work, we take the first steps toward theoretical exploration of the QKZM in two dimensions for interacting quantum matter. We study the dynamical crossing of the QPT in the paradigmatic Ising model by a joint effort of modern state-of-the-art numerical methods, including artificial neural networks and tensor networks. As a central result, we quantify universal QKZM behavior close to the QPT. We also note that, upon traversing further into the ferromagnetic regime, deviations from the QKZM prediction appear. We explain the observed behavior by proposing an extended QKZM taking into account spectral information as well as phase ordering. Our work provides a testing platform for higher-dimensional quantum simulators.
量子基布尔-祖雷克机制(QKZM)预测了量子相变(QPT)附近的普遍动力学行为。对于一维量子物质,现在已经有了很好的理解。然而,高维系统仍然是一个挑战,这是由于相关QPT及其底层共形场论的本质不同特性所导致的复杂性。在这项工作中,我们朝着二维相互作用量子物质的QKZM理论探索迈出了第一步。我们通过包括人工神经网络和张量网络在内的现代先进数值方法的共同努力,研究了典型伊辛模型中QPT的动态跨越。作为一个核心结果,我们量化了接近QPT的普遍QKZM行为。我们还注意到,在进一步深入铁磁区域时,会出现与QKZM预测的偏差。我们通过提出一个考虑光谱信息以及相序的扩展QKZM来解释观察到的行为。我们的工作为高维量子模拟器提供了一个测试平台。