Department of Physics, Technical University of Munich, 85748, Garching, Germany.
Munich Center for Quantum Science and Technology (MCQST), Schellingstr. 4, D-80799, München, Germany.
Nat Commun. 2022 Dec 10;13(1):7663. doi: 10.1038/s41467-022-35301-6.
Unconventional nonequilibrium phases with restricted correlation spreading and slow entanglement growth have been proposed to emerge in systems with confined excitations, calling their thermalization dynamics into question. Here, we show that in confined systems the thermalization dynamics after a quantum quench instead exhibits multiple stages with well separated time scales. As an example, we consider the confined Ising spin chain, in which domain walls in the ordered phase form bound states reminiscent of mesons. The system first relaxes towards a prethermal state, described by a Gibbs ensemble with conserved meson number. The prethermal state arises from rare events in which mesons are created in close vicinity, leading to an avalanche of scattering events. Only at much later times a true thermal equilibrium is achieved in which the meson number conservation is violated by a mechanism akin to the Schwinger effect. The discussed prethermalization dynamics is directly relevant to generic one-dimensional, many-body systems with confined excitations.
具有受限关联扩展和缓慢纠缠增长的非传统非平衡相已被提出会出现在受限激发的系统中,这使得它们的热化动力学受到质疑。在这里,我们表明,在受限系统中,量子淬火后的热化动力学反而表现出多个具有明显时间尺度分离的阶段。作为一个例子,我们考虑受限的伊辛自旋链,其中有序相中的畴壁形成类似于介子的束缚态。系统首先松弛到预热状态,由具有守恒介子数的吉布斯系综描述。预热状态是由介子在近距离产生的罕见事件引起的,导致散射事件的雪崩。只有在更晚的时间,才会通过类似于施温格效应的机制实现真正的热平衡,其中介子数守恒被破坏。所讨论的预热化动力学与具有受限激发的通用一维多体系统直接相关。