Active fluids are a class of nonequilibrium systems where energy is injected into the system continuously by the constituent particles themselves. Many examples, such as bacterial suspensions and actomyosin networks, are intrinsically chiral at a local scale, so that their activity involves torque dipoles alongside the force dipoles usually considered. Although many aspects of active fluids have been studied, the effects of chirality on them are much less known. Here, we study by computer simulation the dynamics of an unstructured droplet of chiral active fluid in three dimensions. Our model considers only the simplest possible combination of chiral and achiral active stresses, yet this leads to an unprecedented range of complex motilities,...
We study the effects of internal active forces and torques on a 3-dimensional (3D) droplet of chol...
Most synthetic microswimmers do not reach the autonomy of their biological counterparts in terms of ...
Conventional transport processes are driven by biases, e.g., diffusion is driven by concentration bi...
Active fluids are ubiquitous in nature, spanning both microscopic and macroscopic length scales. They...
Biological matter is driven far from thermodynamic equilibrium by active processes on the molecular ...
Chirality is a recurrent theme in the study of biological systems, in which active processes are dri...
Active processes in biological systems often exhibit chiral asymmetries. Examples are the chirality ...
Active processes in biological systems often exhibit chiral asymmetries. Examples are the chirality ...
The physico-chemical processes supporting life’s purposeful movement remain essentially unknown. Sel...
Chiral symmetry breaking is ubiquitous in biological systems, from DNA to bacterial suspensions. A k...
The interplay between the chirality of many biological molecules and the energy injected at small le...
Biological microswimmers navigate upstream of an external flow with trajectories ranging from linear...
Biomimetic micro-swimmers can be used for various medical applications, such as targeted drug delive...
Biomimetic micro-swimmers can be used for various medical applications, such as targeted drug delive...
Many microorganisms take a chiral path while swimming in an ambient fluid. In this paper we study th...
We study the effects of internal active forces and torques on a 3-dimensional (3D) droplet of chol...
Most synthetic microswimmers do not reach the autonomy of their biological counterparts in terms of ...
Conventional transport processes are driven by biases, e.g., diffusion is driven by concentration bi...
Active fluids are ubiquitous in nature, spanning both microscopic and macroscopic length scales. They...
Biological matter is driven far from thermodynamic equilibrium by active processes on the molecular ...
Chirality is a recurrent theme in the study of biological systems, in which active processes are dri...
Active processes in biological systems often exhibit chiral asymmetries. Examples are the chirality ...
Active processes in biological systems often exhibit chiral asymmetries. Examples are the chirality ...
The physico-chemical processes supporting life’s purposeful movement remain essentially unknown. Sel...
Chiral symmetry breaking is ubiquitous in biological systems, from DNA to bacterial suspensions. A k...
The interplay between the chirality of many biological molecules and the energy injected at small le...
Biological microswimmers navigate upstream of an external flow with trajectories ranging from linear...
Biomimetic micro-swimmers can be used for various medical applications, such as targeted drug delive...
Biomimetic micro-swimmers can be used for various medical applications, such as targeted drug delive...
Many microorganisms take a chiral path while swimming in an ambient fluid. In this paper we study th...
We study the effects of internal active forces and torques on a 3-dimensional (3D) droplet of chol...
Most synthetic microswimmers do not reach the autonomy of their biological counterparts in terms of ...
Conventional transport processes are driven by biases, e.g., diffusion is driven by concentration bi...