运动约束在模型活动物质时间反转对称性破缺中的作用。

IF 3.8 Q2 MULTIDISCIPLINARY SCIENCES
PNAS nexus Pub Date : 2025-08-18 eCollection Date: 2025-09-01 DOI:10.1093/pnasnexus/pgaf266
Soumen Das, Shankar Ghosh, Tridib Sadhu, Juliane U Klamser
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引用次数: 0

摘要

活性物质系统本质上是不平衡的,通过利用其内部能量源来完成机械功。时间反转对称的破缺是这种耗散非平衡动力学的一个标志。我们在碰撞事件中引入了一种鲁棒的、实验上可获得的、无创的、基于Kullback-Leibler散度的BTRS定量测量方法,该方法在我们的新型人工活性物质中得到了证明,该人工活性物质由电池供电的球形滚动机器人组成,其不同运动模式下的能量可以高精度测量。我们的模型独立,无量纲测量表征了耗散和内部能量如何受到与环境相互作用的运动学约束的影响。我们提出BTRS的这一措施作为从平衡距离的经验估计。我们对这种活跃物质偏离平衡状态的高能洞察来自于我们对非平凡涨落对称的论证,它揭示了活跃能量学潜在的普遍热力学特征。在我们的实验主动系统中,作为BTRS的多体结果,我们证明了羊群的出现,它没有平衡模拟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of kinematic constraints in the time reversal symmetry breaking of a model active matter.

Active-matter systems are inherently out-of-equilibrium and perform mechanical work by utilizing their internal energy sources. Breakdown of time-reversal symmetry (BTRS) is a hallmark of such dissipative nonequilibrium dynamics. We introduce a robust, experimentally accessible, noninvasive, quantitative measure of BTRS in terms of the Kullback-Leibler divergence in collision events, demonstrated in our novel artificial active matter, comprised of battery-powered spherical rolling robots whose energetics in different modes of motion can be measured with high precision. Our model independent, dimensionless measure characterizes how dissipation and internal energetics are influenced by kinematic constraints from interactions with the environment. We propose this measure of BTRS as an empirical estimate of the distance from equilibrium. An energetic insight into this departure of active matter from equilibrium comes from our demonstration of a nontrivial fluctuation symmetry, which reveals a potentially universal thermodynamic characteristic of active energetics. As a many-body consequence of BTRS in our experimental active system, we demonstrate the emergence of herding, which has no equilibrium analog.

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CiteScore
1.80
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