We report a simple yet highly efficient chemical motor that can be controlled with visible light. The motor made from a noble metal and doped silicon acts as a pump, which is driven through a light-activated catalytic reaction process. We show that the actuation is based on electro-osmosis with the electric field generated by chemical reactions at the metal and silicon surfaces, whereas the contribution of diffusio-osmosis to the actuation is negligible. Surprisingly, the pump can be operated using water as fuel. This is possible because of the large ζ-potential of silicon, which makes the electro-osmotic fluid motion sizable even though the electric field generated by the reaction is weak. The electro-hydrodynamic process is greatly amplif...
Catalytic engines can use hydrogen peroxide as a chemical fuel in order to drive motion at the micro...
Small-scale pumps will be the heartbeat of many future micro/ nanoscale platforms. However, the inte...
The use of enzyme catalysis to power micro- and nanomachines offers unique features such as biocompa...
We report a simple yet highly efficient chemical motor that can be controlled with visible light. Th...
We report a simple yet highly efficient chemical motor that can be controlled with visible light. Th...
Self-propelled micro/nanomotors that can transform chemical energy from the surrounding environment ...
The development of effective autonomous micro- and nanomotors relies on controlling fluid motion at ...
Symposium BM6: Fabrication, Characterization and Applications of Bioinspired Nanostructured Material...
The development of autonomous micro/nanomotors driven by self-generated chemical gradients is a topi...
The development of autonomous micro/nanomotors driven by self-generated chemical gradients is a topi...
evelopment of artificial and autono-mous nanomachines is a topic of great interest with significant ...
Microsensors and micromachines that are capable of self-propulsion through fluids could revolutioniz...
The crucial role played by molecular motors in major biological processes gives a clue on the potent...
Light-driven synthetic micro-/nanomotors have attracted considerable attention due to their potentia...
Catalytic engines can use hydrogen peroxide as a chemical fuel in order to drive motion at the micro...
Small-scale pumps will be the heartbeat of many future micro/ nanoscale platforms. However, the inte...
The use of enzyme catalysis to power micro- and nanomachines offers unique features such as biocompa...
We report a simple yet highly efficient chemical motor that can be controlled with visible light. Th...
We report a simple yet highly efficient chemical motor that can be controlled with visible light. Th...
Self-propelled micro/nanomotors that can transform chemical energy from the surrounding environment ...
The development of effective autonomous micro- and nanomotors relies on controlling fluid motion at ...
Symposium BM6: Fabrication, Characterization and Applications of Bioinspired Nanostructured Material...
The development of autonomous micro/nanomotors driven by self-generated chemical gradients is a topi...
The development of autonomous micro/nanomotors driven by self-generated chemical gradients is a topi...
evelopment of artificial and autono-mous nanomachines is a topic of great interest with significant ...
Microsensors and micromachines that are capable of self-propulsion through fluids could revolutioniz...
The crucial role played by molecular motors in major biological processes gives a clue on the potent...
Light-driven synthetic micro-/nanomotors have attracted considerable attention due to their potentia...
Catalytic engines can use hydrogen peroxide as a chemical fuel in order to drive motion at the micro...
Small-scale pumps will be the heartbeat of many future micro/ nanoscale platforms. However, the inte...
The use of enzyme catalysis to power micro- and nanomachines offers unique features such as biocompa...