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Microfluidics: Fluid physics at the nanoliter scale

Reviews of Modern Physics · 2005 · Vol. 77(3) · pp. 977–1026
Todd M. SquiresStephen R. Quake

Abstract

Microfabricated integrated circuits revolutionized computation by vastly reducing the space, labor, and time required for calculations. Microfluidic systems hold similar promise for the large-scale automation of chemistry and biology, suggesting the possibility of numerous experiments performed rapidly and in parallel, while consuming little reagent. While it is too early to tell whether such a vision will be realized, significant progress has been achieved, and various applications of significant scientific and practical interest have been developed. Here a review of the physics of small volumes (nanoliters) of fluids is presented, as parametrized by a series of dimensionless numbers expressing the relative importance of various physical phenomena. Specifically, this review explores the Reynolds number Re, addressing inertial effects; the P\'eclet number Pe, which concerns convective and diffusive transport; the capillary number Ca expressing the importance of interfacial tension; the Deborah, Weissenberg, and elasticity numbers De, Wi, and El, describing elastic effects due to deformable microstructural elements like polymers; the Grashof and Rayleigh numbers Gr and Ra, describing density-driven flows; and the Knudsen number, describing the importance of noncontinuum molecular effects. Furthermore, the long-range nature of viscous flows and the small device dimensions inherent in microfluidics mean that the influence of boundaries is typically significant. A variety of strategies have been developed to manipulate fluids by exploiting boundary effects; among these are electrokinetic effects, acoustic streaming, and fluid-structure interactions. The goal is to describe the physics behind the rich variety of fluid phenomena occurring on the nanoliter scale using simple scaling arguments, with the hopes of developing an intuitive sense for this occasionally counterintuitive world.

Electrohydrodynamics and Fluid DynamicsMicrofluidic and Bio-sensing TechnologiesMicrofluidic and Capillary Electrophoresis ApplicationsReynolds numberMicrofluidicsPhysicsFluid dynamicsFluid mechanicsDeborah numberElectrokinetic phenomenaNanotechnologyStatistical physicsMechanics
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References
Principles of polymer chemistry
Choice Reviews Online · 1995 · 15,274 citations
On the dispersion of a solute in a fluid flowing through a tube
Proceedings of the Royal Society of London A Mathematical and Physical Sciences · 1956 · 2,781 citations
<i>An Introduction to Fluid Mechanics</i>
Journal of Applied Mechanics · 1968 · 1,009 citations
The development of chaotic advection
Physics of Fluids · 2002 · 487 citations
Capillary electrophoresis on microchip
Electrophoresis · 2000 · 483 citations
Formation of dispersions using “flow focusing” in microchannels
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