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December 1, 2009Chemical Society Reviews1,543 citationsOpen Access

Nanofluidics, from bulk to interfaces

LBLydéric BocquetÉCÉlisabeth Charlaix

Key Points

  • To review the physical mechanisms governing fluid transport at nanometer scales and evaluate the transition from bulk fluid behavior to interface-dominated transport regimes.
  • Synthesized theoretical foundations and experimental evidence across 156 published studies in nanofluidics and microfluidics.
  • Analyzed the breakdown of continuum hydrodynamic models and evaluated interfacial phenomena, including hydrodynamic slip and electrohydrodynamic coupling.
  • Demonstrated that nanoscale confinement causes interface-driven properties to dominate over bulk properties, invalidating standard continuum approximations.
  • Identified prominent surface-mediated mechanisms, notably hydrodynamic slippage and coupled electro-kinetic forces governing fluid movement.
  • Established a functional physical analogy between ionic transport within charged nanochannels and charge carrier transport in doped semiconductors.

Abstract

Nanofluidics has emerged recently in the footsteps of microfluidics, following the quest for scale reduction inherent to nanotechnologies. By definition, nanofluidics explores transport phenomena of fluids at nanometer scales. Why is the nanometer scale specific? What fluid properties are probed at nanometric scales? In other words, why does 'nanofluidics' deserve its own brand name? In this critical review, we will explore the vast manifold of length scales emerging for fluid behavior at the nanoscale, as well as the associated mechanisms and corresponding applications. We will in particular explore the interplay between bulk and interface phenomena. The limit of validity of the continuum approaches will be discussed, as well as the numerous surface induced effects occurring at these scales, from hydrodynamic slippage to the various electro-kinetic phenomena originating from the couplings between hydrodynamics and electrostatics. An enlightening analogy between ion transport in nanochannels and transport in doped semi-conductors will be discussed (156 references).

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Cite This Study

Bocquet et al. (2009) studied this question.

synapsesocial.com/papers/69d8a2ecd2f7327e70ae3c82https://doi.org/10.1039/b909366b
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