We explore the properties of run-and-tumble particles moving in a piecewise-linear "ratchet" potential by deriving analytic results for the system's steady-state probability density, current, entropy production rate, extractable power, and thermodynamic efficiency. The ratchet's broken spatial symmetry rectifies the particles' self-propelled motion, resulting in a positive current that peaks at finite values of the diffusion strength, ratchet height, and particle self-propulsion speed. Similar nonmonotonic behaviour is also observed for the extractable power and efficiency. We find the optimal apex position for generating maximum current varies with diffusion, and that entropy production can have nonmonotonic dependence on diffusion. In par...
We study the dynamics of a one-dimensional run and tumble particle subjected to confining potentials...
We present a model for a feedback-controlled ratchet consisting of a Brownian particle and a moving,...
We present simulations that reveal a surprisingly large effect of hydrodynamic coupling on the speed...
We explore the properties of run-and-tumble particles moving in a piecewise-linear "ratchet" potenti...
The transport properties of a spherical active Brownian particle in a periodic potential under heavy...
We study a one-dimensional mixture of active (run-and-tumble) particles and passive (Brownian) parti...
Run-and-tumble (RnT) motion is an example of active motility where particles move at constant speed ...
Living cells are known to generate non-Gaussian active fluctuations significantly larger than therma...
We study the transport of self-propelled noninteracting active Brownian particles (ABPs) and run-and...
In this paper we study the unidirectional transport effect for Brownian ratchets modeled by Fokker--...
We study the ashing ratchet model of a Brownian motor, which consists in cyclical switching betwe...
Random and undirected forces are rectified in biological and synthetic systems using ratcheting mech...
We numerically examine the driven transport of an overdamped self-propelled particle through a two-d...
One of the most promising features of active systems is that they can extract energy from their envi...
The energetic efficiency of an overdamped Brownian particle in a sawtooth potential in the presence ...
We study the dynamics of a one-dimensional run and tumble particle subjected to confining potentials...
We present a model for a feedback-controlled ratchet consisting of a Brownian particle and a moving,...
We present simulations that reveal a surprisingly large effect of hydrodynamic coupling on the speed...
We explore the properties of run-and-tumble particles moving in a piecewise-linear "ratchet" potenti...
The transport properties of a spherical active Brownian particle in a periodic potential under heavy...
We study a one-dimensional mixture of active (run-and-tumble) particles and passive (Brownian) parti...
Run-and-tumble (RnT) motion is an example of active motility where particles move at constant speed ...
Living cells are known to generate non-Gaussian active fluctuations significantly larger than therma...
We study the transport of self-propelled noninteracting active Brownian particles (ABPs) and run-and...
In this paper we study the unidirectional transport effect for Brownian ratchets modeled by Fokker--...
We study the ashing ratchet model of a Brownian motor, which consists in cyclical switching betwe...
Random and undirected forces are rectified in biological and synthetic systems using ratcheting mech...
We numerically examine the driven transport of an overdamped self-propelled particle through a two-d...
One of the most promising features of active systems is that they can extract energy from their envi...
The energetic efficiency of an overdamped Brownian particle in a sawtooth potential in the presence ...
We study the dynamics of a one-dimensional run and tumble particle subjected to confining potentials...
We present a model for a feedback-controlled ratchet consisting of a Brownian particle and a moving,...
We present simulations that reveal a surprisingly large effect of hydrodynamic coupling on the speed...