Tuned, driven, and active soft matter
arXiv:1501.07266 · doi:10.1016/j.physrep.2014.10.001
Abstract
One characteristic feature of soft matter systems is their strong response to external stimuli. As a consequence they are comparatively easily driven out of their ground state and out of equilibrium, which leads to many of their fascinating properties. Here, we review illustrative examples. This review is structured by an increasing distance from the equilibrium ground state. On each level, examples of increasing degree of complexity are considered. In detail, we first consider systems that are quasi-statically tuned or switched to a new state by applying external fields. These are common liquid crystals, liquid crystalline elastomers, or ferrogels and magnetic elastomers. Next, we concentrate on systems steadily driven from outside e.g. by an imposed flow field. In our case, we review the reaction of nematic liquid crystals, of bulk-filling periodically modulated structures such as block copolymers, and of localized vesicular objects to an imposed shear flow. Finally, we focus on systems that are "active" and "self-driven". Here our range spans from idealized self-propelled point particles, via sterically interacting particles like granular hoppers, via microswimmers such as self-phoretically driven artificial Janus particles or biological microorganisms, via deformable self-propelled particles like droplets, up to the collective behavior of insects, fish, and birds. As we emphasize, similarities emerge in the features and behavior of systems that at first glance may not necessarily appear related. We thus hope that our overview will further stimulate the search for basic unifying principles underlying the physics of these soft materials out of their equilibrium ground state.
84 pages, 30 figures
References in corpus (58)
- Novel type of phase transition in a system of self-driven particles
- Self-motile colloidal particles: from directed propulsion to random walk
- Interaction Ruling Animal Collective Behaviour Depends on Topological rather than Metric Distance: Evidence from a Field Study
- Spontaneous motion in hierarchically assembled active matter
- Meso-scale turbulence in living fluids
- Statistical Mechanics of Interacting Run-and-Tumble Bacteria
- Fluid dynamics and noise in bacterial cell-cell and cell-surface scattering
- Collective motion of self-propelled particles interacting without cohesion
- Designing phoretic micro- and nano-swimmers
- Phase transition in the collective migration of tissue cells: experiment and model
- When are active Brownian particles and run-and-tumble particles equivalent? Consequences for motility-induced phase separation
- Diffusive transport without detailed balance in motile bacteria: Does microbiology need statistical physics?
- Non-equilibrium clustering of self-propelled rods
- Fluid Flows Created by Swimming Bacteria Drive Self-Organization in Confined Suspensions
- Swarming and swirling in self-propelled polar granular rods
- Collective motion and nonequilibrium cluster formation in colonies of gliding bacteria
- Hydrodynamic equations for self-propelled particles: microscopic derivation and stability analysis
- Swinging of red blood cells under shear flow
- Phase-field Crystals with Elastic Interactions
- Dynamics of a Brownian circle swimmer
- Collective Motion due to escape and pursuit response
- Minimal model for active nematics: quasi-long-range order and giant fluctuations
- Gravitaxis of asymmetric self-propelled colloidal particles
- Enhanced diffusion and ordering of self-propelled rods
- Hydrodynamics of self-propelled hard rods
- Analytic results for the three-sphere swimmer at low Reynolds number
- Derivation of the phase field crystal model for colloidal solidification
- Cooperation of Sperm in Two Dimensions: Synchronization, Attraction and Aggregation through Hydrodynamic Interactions
- Mode Selection in the Spontaneous Motion of an Alcohol Droplet
- Swarm behavior of self-propelled rods and swimming flagella
- Self-Propelled Rods near Surfaces
- Synchronization of rotating helices by hydrodynamic interactions
- Periodic and Quasiperiodic Motion of an Elongated Microswimmer in Poiseuille Flow
- A mean-field theory for self-propelled particles interacting by velocity alignment mechanisms
- Magneto-sensitive elastomers in a homogeneous magnetic field: a regular rectangular lattice model
- Effects of particle distribution on mechanical properties of magneto-sensitive elastomers in a homogeneous magnetic field
- Dynamics of nearly spherical vesicles in an external flow
- Orientational order in concentrated suspensions of spherical microswimmers
- Swinging and tumbling of elastic capsules in shear flow
- Dynamics and rheology of a dilute suspension of vesicles: higher order theory
- Influence of hydrodynamic interactions on lane formation in oppositely charged driven colloids
- Diffusion of individual birds in starling flocks
- Hydrodynamic lift of vesicles under shear flow in microgravity
- Brownian motion with dry friction: Fokker-Planck approach
- Adaptive mesh computation of polycrystalline pattern formation using a renormalization-group reduction of the phase-field crystal model
- Wrinkling of microcapsules in shear flow
- Structural control of elastic moduli in ferrogels and the importance of non-affine deformations
- Two-Dimensional Fluctuating Vesicles in Linear Shear Flow
- Micro-Capsules in Shear Flow
- Stick-slip motion of solids with dry friction subject to random vibrations and an external field
- Semi-soft Nematic Elastomers and Nematics in Crossed Electric and Magnetic Fields
- Singular features in noise-induced transport with dry friction
- Elastic capsules in shear flow: Analytical solutions for constant and time-dependent shear rates
- Rotational motion of a droplet induced by interfacial tension
- Active and driven hydrodynamic crystals
- Phase diagram of Gaussian-core nematics
- Magnetomechanical response of bilayered magnetic elastomers
- Effect of thermal noise on vesicles and capsules in shear flow
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- Focusing by blocking: repeatedly generating central density peaks in self-propelled particle systems by exploiting diffusive processes