Dissipation controls transport and phase transitions in active fluids: mobility, diffusion and biased ensembles

被引:39
|
作者
Fodor, Etienne [1 ]
Nemoto, Takahiro [2 ,3 ]
Vaikuntanathan, Suriyanarayanan [4 ,5 ]
机构
[1] Univ Cambridge, Ctr Math Sci, DAMTP, Wilberforce Rd, Cambridge CB3 0WA, England
[2] Ecole Normale Super, Phys Dept, Philippe Meyer Inst Theoret Phys, 24 Rue Lhomond, F-75231 Paris 05, France
[3] PSL Res Univ, 24 Rue Lhomond, F-75231 Paris 05, France
[4] Univ Chicago, James Franck Inst, 5640 S Ellis Ave, Chicago, IL 60637 USA
[5] Univ Chicago, Dept Chem, 5735 S Ellis Ave, Chicago, IL 60637 USA
来源
NEW JOURNAL OF PHYSICS | 2020年 / 22卷 / 01期
基金
美国国家科学基金会;
关键词
active matter; phase transitions; large deviations; DYNAMICS; ORDER; MODEL; DENSITY; SYSTEM; MATTER;
D O I
10.1088/1367-2630/ab6353
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Active fluids operate by constantly dissipating energy at the particle level to perform a directed motion, yielding dynamics and phases without any equilibrium equivalent. The emerging behaviors have been studied extensively, yet deciphering how local energy fluxes control the collective phenomena is still largely an open challenge. We provide generic relations between the activity-induced dissipation and the transport properties of an internal tracer. By exploiting a mapping between active fluctuations and disordered driving, our results reveal how the local dissipation, at the basis of self-propulsion, constrains internal transport by reducing the mobility and the diffusion of particles. Then, we employ techniques of large deviations to investigate how interactions are affected when varying dissipation. This leads us to shed light on a microscopic mechanism to promote clustering at low dissipation, and we also show the existence of collective motion at high dissipation. Overall, these results illustrate how tuning dissipation provides an alternative route to phase transitions in active fluids.
引用
收藏
页数:18
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