The shape and motion of drops on surfaces is governed by the balance between the driving and the pinning forces. Here we demonstrate control over the motion of droplets on an inclined surface by exerting control over the contact angle hysteresis. The external modulation of contact angle hysteresis is achieved through a voltage-induced local molecular reorganization within the surface film at the solid–liquid interface. We show that tuning contact angle hysteresis alone is sufficient to direct and deform drops when subjected to a constant external driving force, here gravity, in the absence of a pre-defined surface energy gradient or pattern. We also show that the observed stretching and contraction of the drops mimic the motion of an inchwo...
Many applications in modern technology, such as self-cleaning surfaces and digital microfluidics, re...
Control over the interaction of droplets with solid surfaces is commonplace in nature. Famous exampl...
[[abstract]]To clarify a driving mechanism for the self-movement of a droplet across hydrophobic tex...
The shape and motion of drops on surfaces is governed by the balance between the driving and the pin...
The shape and motion of drops on surfaces is governed by the balance between the driving and the pin...
Local contact line pinning prevents droplets from rearranging to minimal global energy, and models f...
The motion of partially wetting liquid drops in contact with a solid surface is strongly affected by...
Controlling the motion of liquid drops in contact with a solid surface has broad technological impli...
Controlling the motion of liquid drops in contact with a solid surface has broad technological impli...
Controlling the motion of drops on solid surfaces is crucial in many natural phenomena and technolog...
Controlling the motion of drops on solid surfaces is crucial in many natural phenomena and technolog...
Controlling the motion of drops on solid surfaces is crucial in many natural phenomena and technolog...
Efficient droplet transport is critical in microassays, microfluidic devices, and a range of heat tr...
We study the motion of a two-dimensional droplet on an inclined surface, under the action of gravity...
Many applications in modern technology, such as self-cleaning surfaces and digital microfluidics, re...
Many applications in modern technology, such as self-cleaning surfaces and digital microfluidics, re...
Control over the interaction of droplets with solid surfaces is commonplace in nature. Famous exampl...
[[abstract]]To clarify a driving mechanism for the self-movement of a droplet across hydrophobic tex...
The shape and motion of drops on surfaces is governed by the balance between the driving and the pin...
The shape and motion of drops on surfaces is governed by the balance between the driving and the pin...
Local contact line pinning prevents droplets from rearranging to minimal global energy, and models f...
The motion of partially wetting liquid drops in contact with a solid surface is strongly affected by...
Controlling the motion of liquid drops in contact with a solid surface has broad technological impli...
Controlling the motion of liquid drops in contact with a solid surface has broad technological impli...
Controlling the motion of drops on solid surfaces is crucial in many natural phenomena and technolog...
Controlling the motion of drops on solid surfaces is crucial in many natural phenomena and technolog...
Controlling the motion of drops on solid surfaces is crucial in many natural phenomena and technolog...
Efficient droplet transport is critical in microassays, microfluidic devices, and a range of heat tr...
We study the motion of a two-dimensional droplet on an inclined surface, under the action of gravity...
Many applications in modern technology, such as self-cleaning surfaces and digital microfluidics, re...
Many applications in modern technology, such as self-cleaning surfaces and digital microfluidics, re...
Control over the interaction of droplets with solid surfaces is commonplace in nature. Famous exampl...
[[abstract]]To clarify a driving mechanism for the self-movement of a droplet across hydrophobic tex...