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October 9, 2025The Journal of Chemical Physics4 citationsOpen Access

Incorporating the molecular-scale into a hydrodynamic description of confined aqueous systems

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HSHaoyuan ShiCMChristopher J. MundyGSGregory K. Schenter

Key Points

  • Hydrodynamics at the nanoscale incorporates molecular effects, enhancing understanding of fluid behavior.
  • The study identifies a hydrodynamic wall that distinguishes slip from stagnant flow in confined systems, providing new insights.
  • Results show consistent outcomes between equilibrium and non-equilibrium molecular dynamics simulations in various flow types.
  • These findings indicate that molecular-scale perspectives can significantly improve traditional continuum methods in fluid dynamics.

Abstract

Hydrodynamics provides a continuum-level description of fluid motion, but its applicability at the nanoscale becomes uncertain due to the emerging importance of molecular-level effects such as spatial heterogeneity. Hydrodynamic boundary conditions that incorporate molecular details allow us to partition the system into a near-wall region and a bulk fluid region. We identify a hydrodynamic wall located inside the fluid that determines where slip begins. By extending the hydrodynamic wall with the slip length, the position of the extrapolated wall is established. This offers a unified description of both slip and stagnant flow behaviors, with wall hydrophobicity characterized by the relative location of the extrapolated wall with respect to the physical wall. Employing this concept in analyses of equilibrium molecular dynamics (MD) and non-equilibrium MD simulations of Couette and Poiseuille flows, our results demonstrate consistency between equilibrium and non-equilibrium approaches across different flow types and confinement levels. This demonstrates the robust nature of linear response theory. We then explore the effects of fluid-wall and bulk fluid interactions on the hydrodynamic properties. These findings enhance the effectiveness of molecular-based simulations for investigating complex confined systems in nanofluidics, biology, and colloidal science, offering a complementary molecular-scale perspective to traditional continuum approaches.

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Cite This Study

Shi et al. (2025) studied this question.

synapsesocial.com/papers/68e70dab90569dd607ee5e47https://doi.org/10.1063/5.0279626
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