The 2024 Motile Active Matter Roadmap
arXiv:2411.19783 · doi:10.1088/1361-648X/adac98
Abstract
Activity and autonomous motion are fundamental aspects of many living and engineering systems. Here, the scale of biological agents covers a wide range, from nanomotors, cytoskeleton, and cells, to insects, fish, birds, and people. Inspired by biological active systems, various types of autonomous synthetic nano- and micromachines have been designed, which provide the basis for multifunctional, highly responsive, intelligent active materials. A major challenge for understanding and designing active matter is their inherent non-equilibrium nature due to persistent energy consumption, which invalidates equilibrium concepts such as free energy, detailed balance, and time-reversal symmetry. Furthermore, interactions in ensembles of active agents are often non-additive and non-reciprocal. An important aspect of biological agents is their ability to sense the environment, process this information, and adjust their motion accordingly. It is an important goal for the engineering of micro-robotic systems to achieve similar functionality. With many fundamental properties of motile active matter now reasonably well understood and under control, the ground is prepared for the study of physical aspects and mechanisms of motion in complex environments, of the behavior of systems with new physical features like chirality, of the development of novel micromachines and microbots, of the emergent collective behavior and swarming of intelligent self-propelled particles, and of particular features of microbial systems. The vast complexity of phenomena and mechanisms involved in the self-organization and dynamics of motile active matter poses major challenges, which can only be addressed by a truly interdisciplinary effort involving scientists from biology, chemistry, ecology, engineering, mathematics, and physics.
References in corpus (82)
- Novel type of phase transition in a system of self-driven particles
- The Mechanics and Statistics of Active Matter
- Physics of Microswimmers - Single Particle Motion and Collective Behavior
- Non-reciprocal phase transitions
- The 2019 Motile Active Matter Roadmap
- Emergent behavior in active colloids
- Superfluid transport of information in turning flocks of starlings
- Dancing Volvox: Hydrodynamic Bound States of Swimming Algae
- Turning bacteria suspensions into a "superfluid"
- Topological active matter
- Green Algae as Model Organisms for Biological Fluid Dynamics
- Adaptive locomotion of artificial microswimmers
- Odd dynamics of living chiral crystals
- Emergent vortices in populations of colloidal rollers
- Targeted Assembly and Synchronization of Self-Spinning Microgears
- Nonreciprocity as a generic route to traveling states
- Diffusion, subdiffusion, and trapping of active particles in heterogeneous media
- Sculpting vesicles with active particles: Less is more
- The Rotating Vicsek Model: Pattern Formation and Enhanced Flocking in Chiral Active Matter
- Flocking and turning: a new model for self-organized collective motion
- Self-propulsion of chemically-active droplets
- Scalar Active Mixtures: The Non-Reciprocal Cahn-Hilliard Model
- Dynamic density shaping of light driven bacteria
- Large-scales patterns in a minimal cognitive flocking model: incidental leaders, nematic patterns, and aggregates
- Distortion and destruction of colloidal flocks in disordered environments
- Emergent oscillations assist obstacle negotiation during ant cooperative transport
- Non-Equilibrium Strongly Hyperuniform Fluids of Circle Active Particles with Large Local Density Fluctuations
- Optimal noise maximizes collective motion in heterogeneous media
- Selective and Collective Actuation in Active Solids
- Active Matter Transport and Jamming on Disordered Landscapes
- Active Particles Bound by Information Flows
- Quantitative Digital Microscopy with Deep Learning
- Dynamic scaling in natural swarms
- Activity induced synchronization: From Mutual Flocking to Chiral Self-Sorting
- A Geometric Criterion for the Optimal Spreading of Active Polymers in Porous Media
- Machine learning active-nematic hydrodynamics
- Engineering sensorial delay to control phototaxis and emergent collective behaviors
- Pattern formation in flocking models: A hydrodynamic description
- Active Contact Forces Drive Non-Equilibrium Fluctuations in Membrane Vesicles
- Birth, Death and Flight: A Theory of Malthusian Flocks
- Active glass: ergodicity breaking dramatically affects response to self-propulsion
- Dynamics of a Embryo Turning Itself Inside Out
- Chemotactic self-caging in active emulsions
- Clustering and phase separation of circle swimmers dispersed in a monolayer
- Optimal Control of Active Nematics
- Ultrafast reversible self-assembly of living tangled matter
- Nonreciprocal pattern formation of conserved fields
- Run-to-Tumble Variability Controls the Surface Residence Times of Bacteria
- Swimming in Complex Fluids
- Critical Phenomenon of the Order-Disorder Transition in Incompressible Flocks
- Metamachines of Pluripotent Colloids
- Simultaneous Phase Separation and Pattern Formation in Chiral Active Mixtures
- Swarming in the Dirt: Ordered Flocks with Quenched Disorder
- Nonreciprocal Cahn-Hilliard model emerges as a universal amplitude equation
- Characterization and Control of the Run-and-Tumble Dynamics of {\it Escherichia Coli}
- Counterfactual rewards promote collective transport using individually controlled swarm microrobots
- Changes in the flagellar bundling time account for variations in swimming behavior of flagellated bacteria in viscous media
- Biophysics underlying the swarm to biofilm transition
- Emergent collective behavior of active Brownian particles by visual perception
- Spontaneous vortex formation by microswimmers with retarded attractions
- Self-organization of primitive metabolic cycles due to non-reciprocal interactions
- 3D spatial exploration by E. coli echoes motor temporal variability
- Encapsulated bacteria deform lipid vesicles into flagellated swimmers
- Natural Swarms in Dimensions
- Collective behavior of self-steering active particles with velocity alignment and visual perception
- Lagrangian 3D tracking of fluorescent microscopic objects in motion
- Crowding-Enhanced Diffusion: An Exact Theory for Highly Entangled Self-Propelled Stiff Filaments
- Rectified Rotational Dynamics of Mobile Inclusions in Two-Dimensional Active Nematics
- Self-propelling colloidal finite state machines
- The ANTS problem
- Hydrodynamic spin-orbit coupling in asynchronous optically driven micro-rotors
- Confinement and collective escape of active particles
- Self-solidifying active droplets showing memory-induced chirality
- Dynamic shapes of floppy vesicles enclosing active Brownian particles with membrane adhesion
- Environmental Memory Boosts Group Formation of Clueless Individuals
- Microplankton life histories revealed by holographic microscopy and deep learning
- Evidence of fluctuation-induced first-order phase transition in active matter
- Hydrodynamic pursuit by cognitive self-steering microswimmers
- Renormalization group crossover in the critical dynamics of field theories with mode coupling terms
- Equilibrium to off-equilibrium crossover in homogeneous active matter
- Dynamical renormalization group for mode-coupling field theories with solenoidal constraint
- Motion of microswimmers in cylindrical microchannels
Cited by in corpus (15)
- A review of active matter reviews
- Binary Mixtures of Intelligent Active Brownian Particles with Visual Perception
- Reinforcement Learning for Active Matter
- Active Matter Flocking via Predictive Alignment
- Weak thermal fluctuations impede steering of chiral magnetic nanobots
- Dumbbell dimer dynamics in three-dimensional chiral fluids
- More is less in unpercolated active solids
- Cell division sets a universal flow geometry in cell layers
- Flocking transition in phoretically interacting active particles with pinning disorder
- Bubble formation in active binary mixture model
- Shape anisotropy governs organization of active rods: Swarming, turbulence, flocking, and jamming
- Morphology, Polarization Patterns, Compression, and Entropy Production in Phase-Separating Active Dumbbell Systems
- Field-controlled interfacial transport and pinning in an active spin system
- Programmable Persistent Random Walks in Active Brownian Particles Govern Emergent Dynamics
- Diffusion of gravitactic chiral active Brownian particles in an asymmetric channel