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Roles of Energy Dissipation in a Liquid-Solid Transition of Out-of-Equilibrium Systems

机译:能量耗散在非平衡系统的液-固过渡中的作用

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Self-organization of active matter as well as driven granular matter in nonequilibrium dynamical states has attracted considerable attention not only from the fundamental and application viewpoints but also as a model to understand the occurrence of such phenomena in nature. These systems share common features originating from their intrinsically out-of-equilibrium nature, and how energy dissipation affects the state selection in such nonequilibrium states remains elusive. As a simple model system, we consider a nonequilibrium stationary state maintained by continuous energy input, relevant to industrial processing of granular materials by vibration and/or flow. More specifically, we experimentally study roles of dissipation in self-organization of a driven granular particle monolayer. We find that the introduction of strong inelasticity entirely changes the nature of the liquid-solid transition from two-step (nearly) continuous transitions (liquid-hexatic-solid) to a strongly discontinuous first-order-like one (liquid-solid), where the two phases with different effective temperatures can coexist, unlike thermal systems, under a balance between energy input and dissipation. Our finding indicates a pivotal role of energy dissipation and suggests a novel principle in the self-organization of systems far from equilibrium. A similar principle may apply to active matter, which is another important class of out-of-equilibrium systems. On noting that interaction forces in active matter, and particularly in living systems, are often nonconservative and dissipative, our finding may also shed new light on the state selection in these systems.
机译:在非平衡动力学状态下,活性物质的自组织以及被驱动的颗粒物质不仅引起了基础和应用观点的关注,而且作为理解自然界中这种现象发生的模型也引起了极大的关注。这些系统具有共同的特征,这些特征源于其固有的非平衡性质,在这种非平衡状态下,能量耗散如何影响状态选择仍然难以捉摸。作为一个简单的模型系统,我们认为通过连续的能量输入保持的非平衡稳态,与通过振动和/或流动进行颗粒材料的工业加工有关。更具体地说,我们通过实验研究了耗散在驱动颗粒单层自组织中的作用。我们发现,强非弹性的引入完全改变了液-固转变的性质,从两步(几乎)连续转变(液-己-固)转变为强不连续的一阶状转变(液-固),与热系统不同,有效能量不同的两相可以在能量输入和耗散之间达到平衡,并存。我们的发现表明了能量耗散的关键作用,并提出了远离平衡的系统自组织中的新原理。类似的原理可能适用于活性物质,这是另一类重要的失衡系统。在注意到活性物质(尤其是生命系统)中的相互作用力通常是不保守和耗散的时,我们的发现可能也为这些系统中的状态选择提供了新的思路。

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