Swimming bacteria power microscopic gears
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- 18 December 2009
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 107 (3), 969-974
- https://doi.org/10.1073/pnas.0913015107
Abstract
Whereas the laws of thermodynamics prohibit extraction of useful work from the Brownian motion of particles in equilibrium, these motions can be “rectified” under nonequilibrium conditions, for example, in the presence of asymmetric geometrical obstacles. Here, we describe a class of systems in which aerobic bacteria Bacillus subtilis moving randomly in a fluid film power submillimeter gears and primitive systems of gears decorated with asymmetric teeth. The directional rotation is observed only in the regime of collective bacterial swimming and the gears’ angular velocities depend on and can be controlled by the amount of oxygen available to the bacteria. The ability to harness and control the power of collective motions appears an important requirement for further development of mechanical systems driven by microorganisms.Keywords
This publication has 32 references indexed in Scilit:
- Swarming dynamics in bacterial coloniesEurophysics Letters, 2009
- High-throughput design of microfluidics based on directed bacterial motilityLab on a Chip, 2009
- Self-Starting Micromotors in a Bacterial BathPhysical Review Letters, 2009
- Microfluidic Pump Powered by Self‐Organizing BacteriaSmall, 2008
- A Wall of Funnels Concentrates Swimming BacteriaJournal of Bacteriology, 2007
- A microrotary motor powered by bacteriaProceedings of the National Academy of Sciences, 2006
- One-dimensional optical thermal ratchetsJournal of Physics: Condensed Matter, 2005
- Microscopic Analysis of a Thermal Brownian MotorPhysical Review Letters, 2004
- A Superconducting Reversible Rectifier That Controls the Motion of Magnetic Flux QuantaScience, 2003
- Control of a biomolecular motor-powered nanodevice with an engineered chemical switchNature Materials, 2002