We investigate the escape rate of an overdamped, self-propelled spherical Brownian particle on a surface from a metastable potential well. Within a modeling in terms of a 1D constant speed of the particle’s active dynamics we consider the associated rate using both numerical and analytical approaches. Regarding the properties of the stationary state in the potential well, two major timescales exist, each governing the translational and the rotational dynamics of the particle, respectively. The particle radius is identified to present the essential quantity in charge of regulating the ratio between those timescales. For very small and very large particle radii, approximate...
We discuss activated escape from a metastable state of a system driven by a time-periodic force. We ...
We consider the motion of a Brownian particle trapped in an arbitrary bounded two or three-dimension...
We study the dynamics of one-dimensional active particles confined in a double-well potential, focus...
International audienceWe study the noise-driven escape of active Brownian particles (ABPs) and run-a...
The escape rate of a Brownian particle over a potential barrier is accurately described by the Kram...
Activity significantly enhances the escape rate of a Brownian particle over a potential barrier. Wh...
We study the influence of the velocity dependence of friction on the escape rate of a Brownian parti...
We determine and discuss the escape rate of a charged particle from a metastable state in the presen...
The Kramers theory for the thermally activated rate of escape of a Brownian particle from a potentia...
The rate of escape of polymers from a two-dimensionally confining potential well has been evaluated ...
We investigate the escape rate of Brownian particles that move in a cubic metastable poten...
Rare transitions between long-lived metastable states underlie a great variety of physical, chemical...
A particle moves with Brownian motion in a unit disc with reflection from the boundaries except for ...
International audienceWe investigate exit times from domains of attraction for the motion of a self-...
The probability per unit time for a thermally activated Brownian particle to escape over a potential...
We discuss activated escape from a metastable state of a system driven by a time-periodic force. We ...
We consider the motion of a Brownian particle trapped in an arbitrary bounded two or three-dimension...
We study the dynamics of one-dimensional active particles confined in a double-well potential, focus...
International audienceWe study the noise-driven escape of active Brownian particles (ABPs) and run-a...
The escape rate of a Brownian particle over a potential barrier is accurately described by the Kram...
Activity significantly enhances the escape rate of a Brownian particle over a potential barrier. Wh...
We study the influence of the velocity dependence of friction on the escape rate of a Brownian parti...
We determine and discuss the escape rate of a charged particle from a metastable state in the presen...
The Kramers theory for the thermally activated rate of escape of a Brownian particle from a potentia...
The rate of escape of polymers from a two-dimensionally confining potential well has been evaluated ...
We investigate the escape rate of Brownian particles that move in a cubic metastable poten...
Rare transitions between long-lived metastable states underlie a great variety of physical, chemical...
A particle moves with Brownian motion in a unit disc with reflection from the boundaries except for ...
International audienceWe investigate exit times from domains of attraction for the motion of a self-...
The probability per unit time for a thermally activated Brownian particle to escape over a potential...
We discuss activated escape from a metastable state of a system driven by a time-periodic force. We ...
We consider the motion of a Brownian particle trapped in an arbitrary bounded two or three-dimension...
We study the dynamics of one-dimensional active particles confined in a double-well potential, focus...