Cataloged from PDF version of article.Unlike passive Brownian particles, active Brownian particles, also known as microswimmers, propel themselves with directed motion and thus drive themselves out of equilibrium. Understanding their motion can provide insight into out-of-equilibrium phenomena associated with biological examples such as bacteria, as well as with artificial microswimmers. We discuss how to mathematically model their motion using a set of stochastic differential equations and how to numerically simulate it using the corresponding set of finite difference equations both in homogenous and complex environments. In particular, we show how active Brownian particles do not follow the Maxwell-Boltzmann distribution-a clear signature...
Movement is an essential feature of life. It allows organisms to move towards a more favorable envir...
Some randomness is present in most phenomena, ranging from biomolecules and nanodevices to financial...
The active Brownian particle (ABP) model is widely used to describe the dynamics of active matter sy...
Unlike passive Brownian particles, active Brownian particles, also known as microswimmers, propel th...
Cataloged from PDF version of article.Unlike passive Brownian particles, active Brownian particles, ...
Optical forces can affect the motion of a Brownian particle. For example, optical tweezers use optic...
When in 1827 the botanist Robert Brown was looking through a microscope he recognized particles movi...
Differently from passive Brownian particles, active particles, also known as self-propelled Brownian...
We show active Brownian particles (passive Brownian particles in a bacterial bath) switches between ...
Differently from passive Brownian particles, active particles, also known as self-propelled Brownian...
Cataloged from PDF version of article.Active Brownian particles are capable of taking up energy from...
We study interacting active Brownian particles (ABPs) with a space-dependent swim velocity via simul...
Biological microswimmers often inhabit a porous or crowded environment such as soil. In order to und...
The motion of microscopic objects is strongly affected by their surrounding environment. In quiescen...
Active Brownian particles are capable of taking up energy from their environment and converting it i...
Movement is an essential feature of life. It allows organisms to move towards a more favorable envir...
Some randomness is present in most phenomena, ranging from biomolecules and nanodevices to financial...
The active Brownian particle (ABP) model is widely used to describe the dynamics of active matter sy...
Unlike passive Brownian particles, active Brownian particles, also known as microswimmers, propel th...
Cataloged from PDF version of article.Unlike passive Brownian particles, active Brownian particles, ...
Optical forces can affect the motion of a Brownian particle. For example, optical tweezers use optic...
When in 1827 the botanist Robert Brown was looking through a microscope he recognized particles movi...
Differently from passive Brownian particles, active particles, also known as self-propelled Brownian...
We show active Brownian particles (passive Brownian particles in a bacterial bath) switches between ...
Differently from passive Brownian particles, active particles, also known as self-propelled Brownian...
Cataloged from PDF version of article.Active Brownian particles are capable of taking up energy from...
We study interacting active Brownian particles (ABPs) with a space-dependent swim velocity via simul...
Biological microswimmers often inhabit a porous or crowded environment such as soil. In order to und...
The motion of microscopic objects is strongly affected by their surrounding environment. In quiescen...
Active Brownian particles are capable of taking up energy from their environment and converting it i...
Movement is an essential feature of life. It allows organisms to move towards a more favorable envir...
Some randomness is present in most phenomena, ranging from biomolecules and nanodevices to financial...
The active Brownian particle (ABP) model is widely used to describe the dynamics of active matter sy...