We present an approach for modeling nanoscale wetting and dewetting of textured solid surfaces that exploits recently developed, sophisticated techniques for computing exact long-range dispersive van der Waals (vdW) or (more generally) Casimir forces in arbitrary geometries. We apply these techniques to solve the variational formulation of the Young-Laplace equation and predict the equilibrium shapes of liquid-vacuum interfaces near solid gratings. We show that commonly employed methods of computing vdW interactions based on additive Hamaker or Derjaguin approximations, which neglect important electromagnetic boundary effects, can result in large discrepancies in the shapes and behaviors of liquid surfaces compared to exact methods.
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Inst Fed Rio de Janeiro, BR-26530060 Rio De Janeiro, Brazil
Univ Fed Rio de Janeiro, Inst Fis, BR-21941972 Rio de Janeiro, BrazilInst Fed Rio de Janeiro, BR-26530060 Rio De Janeiro, Brazil
de Melo e Souza, Reinaldo
Kort-Kamp, W. J. M.
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Univ Fed Rio de Janeiro, Inst Fis, BR-21941972 Rio de Janeiro, BrazilInst Fed Rio de Janeiro, BR-26530060 Rio De Janeiro, Brazil
Kort-Kamp, W. J. M.
Sigaud, C.
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Univ Fed Rio de Janeiro, Inst Fis, BR-21941972 Rio de Janeiro, BrazilInst Fed Rio de Janeiro, BR-26530060 Rio De Janeiro, Brazil
Sigaud, C.
Farina, C.
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Univ Fed Rio de Janeiro, Inst Fis, BR-21941972 Rio de Janeiro, BrazilInst Fed Rio de Janeiro, BR-26530060 Rio De Janeiro, Brazil