Biological microswimmers navigate upstream of an external flow with trajectories ranging from linear to spiralling and oscillatory. Such a rheotactic response primarily stems from the hydrodynamic interactions triggered by the complex shapes of the microswimmers, such as flagellar chirality. We show here that a self-propelling droplet exhibits oscillatory rheotaxis in a microchannel, despite its simple spherical geometry. Such behaviour has been previously unobserved in artificial swimmers. Comparing our experiments to a purely hydrodynamic theory model, we demonstrate that the oscillatory rheotaxis of the droplet is primarily governed by both the shear flow characteristics and the interaction of the finite-sized microswimmer with all four ...
Artificial microswimmers are micron-sized devices that can propel in viscous fluids. Their potentia...
In the absence of inertia, a reciprocal swimmer achieves no net motion in a viscous Newtonian fluid....
Most synthetic microswimmers do not reach the autonomy of their biological counterparts in terms of ...
Biological and artificial microswimmers often navigate channels under external flow, where in many b...
Biological microswimmers are known to navigate upstream of an external flow (positive rheotaxis) in ...
Fluid flow is ubiquitous in many environments that form habitats for microorganisms. Therefore, it i...
The transport of motile microorganisms is strongly influenced by fluid flows that are ubiquitous in ...
Microswimmers, such as bacteria, are known to show different behaviours depending on their local env...
Chemotaxis and auto-chemotaxis are key mechanisms in the dynamics of micro-organisms, e.g. in the ac...
Inspired by recent experiments using synthetic microswimmers to manipulate droplets, we investigate ...
Both biological micro-organisms and synthetic micro-robots propel through viscous liquids to achieve...
Using a multiple-scale analysis, Walker et al. (J. Fluid Mech., vol. 944, 2022, R2) obtain the long-...
Swimming is a fundamental feature in many living systems. Biological microorganisms move in the sear...
The current work studies the dynamics of a microswimmer in pressure-driven flow of a weakly viscoela...
Swimming cells and microorganisms must often move through complex fluids that contain an immersed mi...
Artificial microswimmers are micron-sized devices that can propel in viscous fluids. Their potentia...
In the absence of inertia, a reciprocal swimmer achieves no net motion in a viscous Newtonian fluid....
Most synthetic microswimmers do not reach the autonomy of their biological counterparts in terms of ...
Biological and artificial microswimmers often navigate channels under external flow, where in many b...
Biological microswimmers are known to navigate upstream of an external flow (positive rheotaxis) in ...
Fluid flow is ubiquitous in many environments that form habitats for microorganisms. Therefore, it i...
The transport of motile microorganisms is strongly influenced by fluid flows that are ubiquitous in ...
Microswimmers, such as bacteria, are known to show different behaviours depending on their local env...
Chemotaxis and auto-chemotaxis are key mechanisms in the dynamics of micro-organisms, e.g. in the ac...
Inspired by recent experiments using synthetic microswimmers to manipulate droplets, we investigate ...
Both biological micro-organisms and synthetic micro-robots propel through viscous liquids to achieve...
Using a multiple-scale analysis, Walker et al. (J. Fluid Mech., vol. 944, 2022, R2) obtain the long-...
Swimming is a fundamental feature in many living systems. Biological microorganisms move in the sear...
The current work studies the dynamics of a microswimmer in pressure-driven flow of a weakly viscoela...
Swimming cells and microorganisms must often move through complex fluids that contain an immersed mi...
Artificial microswimmers are micron-sized devices that can propel in viscous fluids. Their potentia...
In the absence of inertia, a reciprocal swimmer achieves no net motion in a viscous Newtonian fluid....
Most synthetic microswimmers do not reach the autonomy of their biological counterparts in terms of ...