Dynamics and efficiency of a self-propelled, diffusiophoretic swimmer
arXiv:1109.6218 · doi:10.1063/1.3681143
Abstract
Active diffusiophoresis - swimming through interaction with a self-generated, neutral, solute gradient - is a paradigm for autonomous motion at the micrometer scale. We study this propulsion mechanism within a linear response theory. Firstly, we consider several aspects relating to the dynamics of the swimming particle. We extend established analytical formulae to describe small swimmers, which interact with their environment on a finite lengthscale. Solute convection is also taken into account. Modeling of the chemical reaction reveals a coupling between the angular distribution of reactivity on the swimmer and the concentration field. This effect, which we term "reaction induced concentration distortion", strongly influences the particle speed. Building on these insights, we employ irreversible, linear thermodynamics to formulate an energy balance. This approach highlights the importance of solute convection for a consistent treatment of the energetics. The efficiency of swimming is calculated numerically and approximated analytically. Finally, we define an efficiency of transport for swimmers which are moving in random directions. It is shown that this efficiency scales as the inverse of the macroscopic distance over which transport is to occur.
16 pages, 11 figures
References in corpus (6)
- Self-motile colloidal particles: from directed propulsion to random walk
- Propulsion of a molecular machine by asymmetric distribution of reaction--products
- Giant amplification of interfacially driven transport by hydrodynamic slip: diffusio-osmosis and beyond
- Swarm behavior of self-propelled rods and swimming flagella
- Locomotion of Electrocatalytic Nanomotors due to Reaction Induced Charge Auto-Electrophoresis
- Pulling and Pushing a Cargo With a Catalytically Active Carrier
Cited by in corpus (51)
- Physics of Microswimmers - Single Particle Motion and Collective Behavior
- Dynamical clustering and phase separation in suspensions of self-propelled colloidal particles
- Emergent behavior in active colloids
- Osmosis, from molecular insights to large-scale applications
- Phoretic self-propulsion at finite Péclet numbers
- Active phase separation in mixtures of chemically interacting particles
- A Classical Density-Functional Theory for Describing Water Interfaces
- Non-Gaussian statistics for the motion of self-propelled Janus particles: experiment versus theory
- Self-Diffusiophoretic Colloidal Propulsion Near a Solid Boundary
- Autophoretic locomotion from geometric asymmetry
- Nonlinear, electrocatalytic swimming in the presence of salt
- Active colloids in the context of chemical kinetics
- Phoretic self-propulsion: a mesoscopic description of reaction dynamics that powers motion
- Autophoretic motion in three dimensions
- Geometric pumping in autophoretic channels
- Minimum Dissipation Theorem for Microswimmers
- Transmission of torque at the nanoscale
- Ångström-scale chemically powered motors
- Self-diffusiophoresis induced by fluid interfaces
- Mechanochemical fluctuation theorem and thermodynamics of self-phoretic motors
- Autophoretic locomotion in weakly viscoelastic fluids at finite Péclet number
- Efficiency limits of the three-sphere swimmer
- Thermodynamics and statistical mechanics of chemically-powered synthetic nanomotors
- Thermodynamics of active matter: Tracking dissipation across scales
- Self-Propelled Colloidal Particle Near a Planar Wall: A Brownian Dynamics Study
- Szilard engines and information-based work extraction for active systems
- Artificial chemotaxis of phoretic swimmers: Instantaneous and long-time behaviour
- Optimal swimmer can be puller, pusher, or neutral depending on the shape
- Optimal slip velocities of micro-swimmers with arbitrary axisymmetric shapes
- The Efficiency of Self-Phoretic Propulsion Mechanisms with Surface Reaction Heterogeneity
- Microscopic and continuum descriptions of Janus motor fluid flow fields
- Single particle motion and collective dynamics in Janus motor systems
- Minimum Entropy Production by Microswimmers with Internal Dissipation
- Electrophoresis of active Janus particles
- Can phoretic particles swim in two dimensions?
- Chemically active colloids near osmotic-responsive walls with surface-chemistry gradients
- Efficiency of isothermal active matter engines: Strong driving beats weak driving
- Auto-electrophoresis in non-Newtonian media: interaction of rheology and electrocatalytic parameters
- Thermodynamic Approach to the Self-Diffusiophoresis of Colloidal Janus Particles
- Non-Newtonian effects on the slip and mobility of a self-propelling active particle
- Active spheres induce Marangoni flows that drive collective dynamics
- Phase coexistence in a monolayer of active particles induced by Marangoni flows
- Phoretic flow induced by asymmetric confinement
- Measurement-Induced Phase Transitions in Informational Active Matter
- Langevin equations and a geometric integration scheme for the overdamped limit of rotational Brownian motion of axisymmetric particles
- Diffusioosmotic corner flows
- A simple micro-swimmer model inspired by the general equation for nonequilibrium reversible-irreversible coupling
- Force-dependence of the rigid-body motion for an arbitrarily shaped particle in a forced, incompressible Stokes flow
- Onsager reciprocal relations and chemo-mechanical coupling for chemically-active colloids
- Autophoresis of a Janus particle near a planar wall: a lubrication limit
- A Rayleigh criterion for mechanical instability: inducing activity by chemo-mechanical coupling