论文标题
活性场理论的热力学:与储层的耦合成本
Thermodynamics of active field theories: Energetic cost of coupling to reservoirs
论文作者
论文摘要
主动物质的标志是其微观成分的自动定向运动是由能源消耗驱动的。这导致了大规模动力学和结构的出现,而没有任何平衡等效。尽管主动场理论提供了有用的流体动力描述,但尚不清楚如何从这种粗粒描述中正确量化动力学的能量成本。我们提供了一个热力学一致的框架,以在流体动力学水平上识别活动系统及其周围恒温器之间的能量交换。基于线性不可逆的热力学,我们确定了在非平衡驾驶的基础上,活动场对夫妇与基础储层。这导致评估恒温器中耗散的热量速率,以衡量使系统远离平衡的成本,这与活动场动力学的不可逆性有关。我们证明了我们的方法在两个流行的活动场理论中的适用性:(i)保守密度场的动力学再现活性相分离,以及(ii)密度和极化的耦合动力学描述了可变形的液滴。结合了数值和分析方法,我们提供了消散热量的空间图,将它们与活动场动力学的不可逆性度量进行比较,并探索整体消散热量如何随新兴顺序变化。
The hallmark of active matter is the autonomous directed motion of its microscopic constituents driven by consumption of energy resources. This leads to the emergence of large scale dynamics and structures without any equilibrium equivalent. Though active field theories offer a useful hydrodynamic description, it is unclear how to properly quantify the energetic cost of the dynamics from such a coarse-grained description. We provide a thermodynamically consistent framework to identify the energy exchanges between active systems and their surrounding thermostat at the hydrodynamic level. Based on linear irreversible thermodynamics, we determine how active fields couple with the underlying reservoirs at the basis of nonequilibrium driving. This leads to evaluating the rate of heat dissipated in the thermostat, as a measure of the cost to sustain the system away from equilibrium, which is related to the irreversibility of the active field dynamics. We demonstrate the applicability of our approach in two popular active field theories: (i) the dynamics of a conserved density field reproducing active phase separation, and (ii) the coupled dynamics of density and polarization describing motile deformable droplets. Combining numerical and analytical approaches, we provide spatial maps of dissipated heat, compare them with the irreversibility measure of the active field dynamics, and explore how the overall dissipated heat varies with the emerging order.