Replicating efficient chemical energy utilization of biological nanomotors is one ultimate goal of nanotechnology and energy technology. Here, we report a rationally designed autonomous bipedal nanowalker made of DNA that achieves a fuel efficiency of less than two fuel molecules decomposed per productive forward step, hence breaking a general threshold for chemically powered machines invented to date. As a genuine enzymatic nanomotor without changing itself nor the track, the walker demonstrates a sustained motion on an extended double-stranded track at a speed comparable to previous burn-bridge motors. Like its biological counterparts, this artificial nanowalker realizes multiple chemomechanical gatings, especially a bias-generating produ...
Creating artificial macromolecular transport systems that can support the movement of molecules alon...
Imagine a host of nanoscale DNA robots move,autonomously over a microscale DNA nanostructure, each f...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
Artificial molecular walkers beyond burn-bridge designs are important for nanotechnology, but their ...
DNA nanomotors are synthetic biochemical devices whose motion can be controlled at the molecular sca...
A bipedal DNA nanowalker was recently reported to convert chemical energy into directional motion au...
Track-walking nanomotors and larger systems integrating these motors are important for wide real-wor...
Intracellular protein motors have evolved to perform specific tasks critical to the function of cell...
Synthetic motors that consume chemical energy to produce mechanical work offer potential application...
The second law of thermodynamics requires that directed motion be accompanied by dissipation of ener...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
Inspired by the swimming of natural microorganisms, synthetic micro-/nanomachines, which convert ene...
Inspired by the swimming of natural microorganisms, synthetic micro-/nanomachines, which convert ene...
The second law of thermodynamics requires that directed motion be accompanied by dissipation of ener...
Biological motors are highly complex protein assemblies that generate linear or rotary motion, power...
Creating artificial macromolecular transport systems that can support the movement of molecules alon...
Imagine a host of nanoscale DNA robots move,autonomously over a microscale DNA nanostructure, each f...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
Artificial molecular walkers beyond burn-bridge designs are important for nanotechnology, but their ...
DNA nanomotors are synthetic biochemical devices whose motion can be controlled at the molecular sca...
A bipedal DNA nanowalker was recently reported to convert chemical energy into directional motion au...
Track-walking nanomotors and larger systems integrating these motors are important for wide real-wor...
Intracellular protein motors have evolved to perform specific tasks critical to the function of cell...
Synthetic motors that consume chemical energy to produce mechanical work offer potential application...
The second law of thermodynamics requires that directed motion be accompanied by dissipation of ener...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...
Inspired by the swimming of natural microorganisms, synthetic micro-/nanomachines, which convert ene...
Inspired by the swimming of natural microorganisms, synthetic micro-/nanomachines, which convert ene...
The second law of thermodynamics requires that directed motion be accompanied by dissipation of ener...
Biological motors are highly complex protein assemblies that generate linear or rotary motion, power...
Creating artificial macromolecular transport systems that can support the movement of molecules alon...
Imagine a host of nanoscale DNA robots move,autonomously over a microscale DNA nanostructure, each f...
We present a synthetic molecular motor capable of autonomous nanoscale transport in solution. Inspir...