论文标题
晶格量规模拟器中相互关联的热化和量子关键性
Interrelated Thermalization and Quantum Criticality in a Lattice Gauge Simulator
论文作者
论文摘要
量规理论和热化既是物理的基础,如今都是对现代量子科学和技术至关重要的主题。最近用超低原子实现的模拟晶格量规理论(LGT)为在同一环境中对量规理论和热化的相关研究提供了独特的机会。理论研究表明,在该实施的LGT中存在Ising量子相变,量子热化也可以发出该相变。然而,由于缺乏用于局部操纵和检测物质和量规场的技术,因此准确确定临界点并探索量子临界状态的热动力学仍然是一个实验挑战。在这里,我们通过将单位地址和原子量分辨的检测装入我们的LGT模拟器中,报告了LGT中LGT中量子关键的实验研究。我们准确地确定与预测值一致的量子临界点。我们准备一个$ | z_ {2} \ rangle $确定性地态,并在整个临界点研究其热化动力学,从而观察到,这种$ | z_ {2} \ rangle $ state仅在关键制度中热量化。该结果表现出量子多体疤痕,量子关键性和对称性破坏之间的相互作用。
Gauge theory and thermalization are both foundations of physics and nowadays are both topics of essential importance for modern quantum science and technology. Simulating lattice gauge theories (LGTs) realized recently with ultracold atoms provides a unique opportunity for carrying out a correlated study of gauge theory and thermalization in the same setting. Theoretical studies have shown that an Ising quantum phase transition exists in this implemented LGT, and quantum thermalization can also signal this phase transition. Nevertheless, it remains an experimental challenge to accurately determine the critical point and controllably explore the thermalization dynamics in the quantum critical regime due to the lack of techniques for locally manipulating and detecting matter and gauge fields. Here, we report an experimental investigation of the quantum criticality in the LGT from both equilibrium and non-equilibrium thermalization perspectives by equipping the single-site addressing and atom-number-resolved detection into our LGT simulator. We accurately determine the quantum critical point agreed with the predicted value. We prepare a $|Z_{2}\rangle$ state deterministically and study its thermalization dynamics across the critical point, leading to the observation that this $|Z_{2}\rangle$ state thermalizes only in the critical regime. This result manifests the interplay between quantum many-body scars, quantum criticality, and symmetry breaking.