Walker Benjamin T, Rodrigues João D, Dhar Himadri S, Oulton Rupert F, Mintert Florian, Nyman Robert A
Physics Department, Blackett Laboratory, Imperial College London, Prince Consort Road, London, SW7 2AZ, UK.
Centre for Doctoral Training in Controlled Quantum Dynamics, Imperial College London, Prince Consort Road, London, SW7 2AZ, UK.
Nat Commun. 2020 Mar 13;11(1):1390. doi: 10.1038/s41467-020-15154-7.
While equilibrium phase transitions are easily described by order parameters and free-energy landscapes, for their non-stationary counterparts these quantities are usually ill-defined. Here, we probe transient non-equilibrium dynamics of an optically pumped, dye-filled microcavity. We quench the system to a far-from-equilibrium state and find delayed condensation close to a critical excitation energy, a transient equivalent of critical slowing down. Besides number fluctuations near the critical excitation energy, we show that transient phase transitions exhibit timing jitter in the condensate formation. This jitter is a manifestation of the randomness associated with spontaneous emission, showing that condensation is a stochastic, rather than deterministic process. Despite the non-equilibrium character of this phase transition, we construct an effective free-energy landscape that describes the formation jitter and allows, in principle, its generalization to a wider class of processes.
虽然平衡相变可以很容易地用序参量和自由能景观来描述,但对于它们的非平稳对应物,这些量通常定义不明确。在这里,我们探究了一个光学泵浦、充满染料的微腔的瞬态非平衡动力学。我们将系统猝灭到远离平衡的状态,并在接近临界激发能量处发现延迟凝聚,这是临界减慢的瞬态等效现象。除了临界激发能量附近的数量涨落,我们还表明瞬态相变在凝聚形成过程中表现出时间抖动。这种抖动是与自发发射相关的随机性的一种表现,表明凝聚是一个随机过程,而非确定性过程。尽管这个相变具有非平衡特性,但我们构建了一个有效的自由能景观,它描述了形成抖动,并且原则上允许将其推广到更广泛的一类过程。