Externally driven condensates show translation-induced polarization, directed coalescence, and anomalous diffusion in viscoelastic media
arXiv:2506.07753 · doi:10.1103/n662-39rs
Abstract
Phase separation into compositionally and physically distinct domains is ubiquitous in (non)living matter ranging from alloys and emulsions to biomolecular condensates in cells. The organization of these domains can be controlled, for example, by nonequilibrium chemical reactions, external fields, or mechanical stresses. In this context, stationary states can emerge from effective long-range interactions resembling the electrostatics of charges. As shown here, externally controlled dynamic states, such as condensate motion, lead to an effective polarization and dipolar force fields even for microscopically nonpolarizable matter. The dipole-dipole interactions resulting from this \emph{translation-induced polarization} cause directed coalescence of domains. This coarsening mechanism complements Ostwald ripening and coalescence due to Brownian motion or Marangoni flows, and has implications for controlling domains by electric fields or concentration gradients. Interestingly, the chemical potential gradients around a domain that nucleates material are exactly opposite to the hydrodynamic pressure gradients around an impermeable colloid that pushes the fluid, suggesting a competition between phase separation and hydrodynamics. In addition to chemical control, the motion of domains can also be driven by mechanical stresses. An example is the cell interior, where mechanical stresses are actively generated by molecular motors and opposed by passive viscoelastic stresses in the cytoplasm and nucleoplasm. The resulting fluid flows lead to Brownian motion with a suppressed or enhanced size scaling which modifies collision-coalescence. For active stresses with a long correlation time, the domains show superdiffusion on intermediate time scales. Together, these findings shed new light on the dynamics of domains in viscoelastic media and conserved order parameters in general.
References in corpus (25)
- Theory of Chemical Kinetics and Charge Transfer based on Nonequilibrium Thermodynamics
- Elastic ripening and inhibition of liquid-liquid phase separation
- Theories of Binary Fluid Mixtures: From Phase-Separation Kinetics to Active Emulsions
- Liquid-Liquid Phase Separation in an Elastic Network
- Elastic Interactions of Cells
- Dynamics of active liquid interfaces
- A novel coarsening mechanism of droplets in immiscible fluid mixtures
- Generic long-range interactions between passive bodies in an active fluid
- Leveraging Collective Effects in Externally Driven Colloidal Suspensions: Experiments and Simulations
- Enzyme-enriched condensates show self-propulsion, positioning, and coexistence
- Thermodynamic Limit for Dipolar Media
- Non-equilibrium phase separation with reactions: A canonical model and its behaviour
- Clustering of Magnetic Swimmers in a Poiseuille Flow
- Droplet Ripening in Concentration Gradients
- Brownian motion: a paradigm of soft matter and biological physics
- Disorder-Induced Long-Ranged Correlations in Scalar Active Matter
- Activity-suppressed phase separation
- Active Brownian motion of emulsion droplets: Coarsening dynamics at the interface and rotational diffusion
- Self-consistent sharp interface theory of active condensate dynamics
- Theory of Elastic Microphase Separation
- Delayed excitations induce polymer looping and coherent motion
- Spontaneous propulsion of an isotropic colloid in a phase-separating environment
- Brownian motion of droplets induced by thermal noise
- Universal limiting behaviour of reaction-diffusion systems with conservation laws
- Pattern formation of phase-separated lipid domains in bilayer membranes