Madeira Lucas, García-Orozco Arnol Daniel, Dos Santos Francisco Ednilson Alves, Bagnato Vanderlei Salvador
Instituto de Física de São Carlos, Universidade de São Paulo, CP 369, São Carlos, São Paulo 13560-970, Brazil.
Departamento de Física, Universidade Federal de São Carlos, São Carlos 13565-905, Brazil.
Entropy (Basel). 2020 Aug 30;22(9):956. doi: 10.3390/e22090956.
Quantum turbulence deals with the phenomenon of turbulence in quantum fluids, such as superfluid helium and trapped Bose-Einstein condensates (BECs). Although much progress has been made in understanding quantum turbulence, several fundamental questions remain to be answered. In this work, we investigated the entropy of a trapped BEC in several regimes, including equilibrium, small excitations, the onset of turbulence, and a turbulent state. We considered the time evolution when the system is perturbed and let to evolve after the external excitation is turned off. We derived an expression for the entropy consistent with the accessible experimental data, which is, using the assumption that the momentum distribution is well-known. We related the excitation amplitude to different stages of the perturbed system, and we found distinct features of the entropy in each of them. In particular, we observed a sudden increase in the entropy following the establishment of a particle cascade. We argue that entropy and related quantities can be used to investigate and characterize quantum turbulence.
量子湍流研究的是量子流体中的湍流现象,比如超流氦和捕获的玻色-爱因斯坦凝聚体(BECs)。尽管在理解量子湍流方面已经取得了很大进展,但仍有几个基本问题有待解答。在这项工作中,我们研究了捕获的BEC在几种状态下的熵,包括平衡态、小激发态、湍流起始态和湍流态。我们考虑了系统受到扰动时的时间演化,以及外部激发关闭后系统的演化。我们推导了一个与可获取的实验数据一致的熵的表达式,该表达式是在假设动量分布已知的情况下得出的。我们将激发幅度与受扰系统的不同阶段联系起来,并且发现了每个阶段熵的不同特征。特别地,我们观察到在粒子级联建立后熵会突然增加。我们认为熵及相关量可用于研究和表征量子湍流。