We consider a population of self-propelled Brownian particles in 2D traps. For non-interacting particles the stationary distribution for position and orientation is found analytically for small and large rotational diffusivities. These results are used to map the system of interacting active particles onto a system of passive particles in a modified trapping potential which we then formulate as a dynamic density functional theory. Our approach is supported by Brownian dynamics simulations of the original and the effective model
Self-propelled particles (SPPs) are particles who, by themselves, are able to generate persistent mo...
Within the Rayleigh-Helmholtz model of active Brownian particles, activity is due to a nonlinear vel...
Active particles may happen to be confined in channels so narrow that they cannot overtake each othe...
We investigate the dynamics of Brownian particles which are active in the sense that they take up en...
We study the stationary states of an over-damped active Brownian particle (ABP) in a harmonic trap i...
We review theoretical models of individual motility as well as collective dynamics and pattern forma...
We study the dynamics of a single trapped probe surrounded by self-propelled active particles in two...
We study the dynamics of a single trapped probe surrounded by self-propelled active particles in two...
We discuss the dynamics of active Brownian particles (ABPs) in crowded environments through the mean...
Starting from the many-particle Smoluchowski equation, we derive a dynamical density functional theo...
We discuss the dynamics of active Brownian particles (ABPs) in crowded environments through the mean...
We investigate the full pair-distribution function of a homogeneous suspension of spherical active B...
We study the effect of different types of fluctuation on the motion of self-propelled particles in t...
In this thesis, we study active particles with focus on statistical properties of trapping time near...
We study the effect of different types of fluctuation on the motion of self-propelled particles in t...
Self-propelled particles (SPPs) are particles who, by themselves, are able to generate persistent mo...
Within the Rayleigh-Helmholtz model of active Brownian particles, activity is due to a nonlinear vel...
Active particles may happen to be confined in channels so narrow that they cannot overtake each othe...
We investigate the dynamics of Brownian particles which are active in the sense that they take up en...
We study the stationary states of an over-damped active Brownian particle (ABP) in a harmonic trap i...
We review theoretical models of individual motility as well as collective dynamics and pattern forma...
We study the dynamics of a single trapped probe surrounded by self-propelled active particles in two...
We study the dynamics of a single trapped probe surrounded by self-propelled active particles in two...
We discuss the dynamics of active Brownian particles (ABPs) in crowded environments through the mean...
Starting from the many-particle Smoluchowski equation, we derive a dynamical density functional theo...
We discuss the dynamics of active Brownian particles (ABPs) in crowded environments through the mean...
We investigate the full pair-distribution function of a homogeneous suspension of spherical active B...
We study the effect of different types of fluctuation on the motion of self-propelled particles in t...
In this thesis, we study active particles with focus on statistical properties of trapping time near...
We study the effect of different types of fluctuation on the motion of self-propelled particles in t...
Self-propelled particles (SPPs) are particles who, by themselves, are able to generate persistent mo...
Within the Rayleigh-Helmholtz model of active Brownian particles, activity is due to a nonlinear vel...
Active particles may happen to be confined in channels so narrow that they cannot overtake each othe...