Recent experiments on the green alga Chlamydomonas that swims using synchronized beating of a pair of flagella have revealed that it exhibits a run-and-tumble behavior similar to that of bacteria such as E. coli. Using a simple purely hydrodynamic model that incorporates a stroke cycle and an intrinsic Gaussian white noise, we show that a stochastic run-and-tumble behavior could emerge due to the nonlinearity of the combined synchronization-rotation-translation dynamics. Our study suggests that nonlinear mechanics could be a significant contributing factor to how the trajectories of the microorganism are selected
In this thesis I study a model of self propelled particles exhibiting run-and tumble dynamics on lat...
The bacterium Escherichia coli (E. coli) swims in viscous fluids by rotating several helical flagell...
The bacterium Escherichia coli (E. coli) swims in viscous fluids by rotating several helical flagell...
Recent experiments on the green alga Chlamydomonas that swims using synchronized beating of a pair o...
The coordination of eukaryotic flagella is essential for many of the most basic processes of life (m...
Abstract. The green alga Chlamydomonas swims with synchronized beating of its two flagella, and is e...
It has long been conjectured that hydrodynamic interactions between beating eukaryotic flagella unde...
Abstract. E. coli bacteria swim in straight runs interrupted by sudden reorientation events called t...
In this work we introduce a stochastic model to describe directional changes in the movement of swim...
The unicellular green alga Chlamydomonas swims with two flagella that can synchronize their beat. Sy...
We study the asymptotic behaviour of the run and tumble model for bacteria movement. Experiments sho...
A simple model for the motion of shape-changing swimmers in Poiseuille flow was recently proposed an...
AbstractTo study the swimming of a peritrichous bacterium such as Escherichia coli, which is able to...
Chemotaxis allows bacteria to respond and adapt to the environment, by tuning tumbling and running ...
The run and tumble motions of a swimming bacterium are well characterized by two stochastic variable...
In this thesis I study a model of self propelled particles exhibiting run-and tumble dynamics on lat...
The bacterium Escherichia coli (E. coli) swims in viscous fluids by rotating several helical flagell...
The bacterium Escherichia coli (E. coli) swims in viscous fluids by rotating several helical flagell...
Recent experiments on the green alga Chlamydomonas that swims using synchronized beating of a pair o...
The coordination of eukaryotic flagella is essential for many of the most basic processes of life (m...
Abstract. The green alga Chlamydomonas swims with synchronized beating of its two flagella, and is e...
It has long been conjectured that hydrodynamic interactions between beating eukaryotic flagella unde...
Abstract. E. coli bacteria swim in straight runs interrupted by sudden reorientation events called t...
In this work we introduce a stochastic model to describe directional changes in the movement of swim...
The unicellular green alga Chlamydomonas swims with two flagella that can synchronize their beat. Sy...
We study the asymptotic behaviour of the run and tumble model for bacteria movement. Experiments sho...
A simple model for the motion of shape-changing swimmers in Poiseuille flow was recently proposed an...
AbstractTo study the swimming of a peritrichous bacterium such as Escherichia coli, which is able to...
Chemotaxis allows bacteria to respond and adapt to the environment, by tuning tumbling and running ...
The run and tumble motions of a swimming bacterium are well characterized by two stochastic variable...
In this thesis I study a model of self propelled particles exhibiting run-and tumble dynamics on lat...
The bacterium Escherichia coli (E. coli) swims in viscous fluids by rotating several helical flagell...
The bacterium Escherichia coli (E. coli) swims in viscous fluids by rotating several helical flagell...