论文标题
淬火冷却和从量子到经典热力学的交叉中的能量动态,信息和热流动
Energy dynamics, information and heat flow in quenched cooling and the crossover from quantum to classical thermodynamics
论文作者
论文摘要
当热的多体量子系统与冷多体量子系统接触到瞬时接触时的动力学可以理解为早期量子相关性(von Neumann熵)增益和较晚时间的能量放松。我们表明,在最短的时间范围内,即使平衡热力学不适用,与熵增益相关的每个系统都会增加能量。这种能量增加是量子起源,是两个系统之间的集体结合能。违反直觉,这意味着这两个系统的热度也更热,当与其他较冷的系统接触时,最初的能量会增加。在能量松弛淹没(量子)相关性堆积的极限中,经典的能量动力学出现,热系统中的能量在与冷却器系统接触后立即减少。我们使用密切相关的SYK系统和弱相关的混合场Ising链来展示这些特征,并评论其对黑洞蒸发和量子热力学的影响。
The dynamics when a hot many-body quantum system is brought into instantaneous contact with a cold many-body quantum system can be understood as a combination of early time quantum correlation (von Neumann entropy) gain and late time energy relaxation. We show that at the shortest timescales there is an energy increase in each system linked to the entropy gain, even though equilibrium thermodynamics does not apply. This energy increase is of quantum origin and results from the collective binding energy between the two systems. Counter-intuitively, this implies that also the hotter of the two systems generically experiences an initial energy increase when brought into contact with the other colder system. In the limit where the energy relaxation overwhelms the (quantum) correlation build-up, classical energy dynamics emerges where the energy in the hot system decreases immediately upon contact with a cooler system. We use both strongly correlated SYK systems and weakly correlated mixed field Ising chains to exhibit these characteristics, and comment on its implications for both black hole evaporation and quantum thermodynamics.