We present in detail a Langevin formalism for constructing stochastic dynamical equations for active-matter systems coupled to a thermal bath. We apply the formalism to clarify issues of principle regarding the sources and signatures of nonequilibrium behaviour in a variety of polar and apolar single-particle systems and polar flocks. We show that distance from thermal equilibrium depends on how time-reversal is implemented and hence on the reference equilibrium state. We predict characteristic forms for the frequency-resolved entropy production for an active polar particle in a harmonic potential, which should be testable in experiments
Active systems evade the rules of equilibrium thermodynamics by constantly dissipating energy at the...
A colloidal particle immersed in a bath of bacteria is a typical example of a passive particle in an...
We investigate the steady-state entropy production rate (EPR) in the hydrodynamic Vicsek model (HVM)...
We present in detail a Langevin formalism for constructing stochastic dynamical equations for active...
In systems driven out of equilibrium symmetries such as detail balance, action-reaction principle, a...
We present a comprehensive study about the relationship between the way detailed balance is broken i...
Active matter systems are driven out of thermal equilibrium by a lack of generalized Stokes-Einstein...
Active matter systems are driven out of thermal equilibrium by a lack of generalized Stokes-Einstein...
Systems driven out of equilibrium display a rich variety of patterns and surprising response behavio...
Baths produce friction and random forcing on particles suspended in them. The relation between noise...
Abstract Baths produce friction and random forcing on particles suspended in them. The relation betw...
Active-matter systems operate far from equilibrium because of the continuous energy injection at the...
Dabelow L, Bo S, Eichhorn R. Irreversibility in Active Matter Systems: Fluctuation Theorem and Mutua...
A Hamiltonian-based model of many harmonically interacting massive particles that are subject to lin...
In the present thesis, a thermodynamic theory is developed for driven soft matter sys-tems like poly...
Active systems evade the rules of equilibrium thermodynamics by constantly dissipating energy at the...
A colloidal particle immersed in a bath of bacteria is a typical example of a passive particle in an...
We investigate the steady-state entropy production rate (EPR) in the hydrodynamic Vicsek model (HVM)...
We present in detail a Langevin formalism for constructing stochastic dynamical equations for active...
In systems driven out of equilibrium symmetries such as detail balance, action-reaction principle, a...
We present a comprehensive study about the relationship between the way detailed balance is broken i...
Active matter systems are driven out of thermal equilibrium by a lack of generalized Stokes-Einstein...
Active matter systems are driven out of thermal equilibrium by a lack of generalized Stokes-Einstein...
Systems driven out of equilibrium display a rich variety of patterns and surprising response behavio...
Baths produce friction and random forcing on particles suspended in them. The relation between noise...
Abstract Baths produce friction and random forcing on particles suspended in them. The relation betw...
Active-matter systems operate far from equilibrium because of the continuous energy injection at the...
Dabelow L, Bo S, Eichhorn R. Irreversibility in Active Matter Systems: Fluctuation Theorem and Mutua...
A Hamiltonian-based model of many harmonically interacting massive particles that are subject to lin...
In the present thesis, a thermodynamic theory is developed for driven soft matter sys-tems like poly...
Active systems evade the rules of equilibrium thermodynamics by constantly dissipating energy at the...
A colloidal particle immersed in a bath of bacteria is a typical example of a passive particle in an...
We investigate the steady-state entropy production rate (EPR) in the hydrodynamic Vicsek model (HVM)...