1,637
Views
70
CrossRef citations to date
0
Altmetric
Original Articles

Wetting characterisation of silicon (1,0,0) surface

&
Pages 700-709 | Received 12 Nov 2012, Accepted 07 Dec 2012, Published online: 11 Feb 2013

REFERENCES

  • G.E.Moore, Cramming more components onto integrated circuits, Proc. IEEE86 (1998), pp. 82–85.
  • R.P.Feynman, There's plenty of room at the bottom, Eng. Sci.23 (1960), pp. 22–36.
  • Y.Qiu, Y.Chen, L.Liu, and G.Zhao, Water and ion distributions in a silicon nanochannel a molecular dynamics study, Proc. Inst. Mech. Eng. Part N: J. Nanoeng. Nanosyst.226 (2012), pp. 31–34.
  • J.Jingchun, S.Liu, and X.Yang, Molecular dynamics simulation of wetting on modified amorphous silica surface, Appl. Surf. Sci.255 (2009), pp. 9078–9084.
  • A.K.Al-Matar and D.A.Rockstraw, A generating equation for mixing rules and two new mixing rules for interatomic potential energy parameters, J. Comput. Chem.15 (2004), pp. 660–668.
  • M.Fyta and R.R.Netz, Ionic force field optimization based on single-ion and ion-pair solvation properties: Going beyond standard mixing rules, J. Chem. Phys.136 (2012), p. 124103.
  • T.Werder, J.H.Walther, R.L.Jaffe, T.Halicioglu, and P.Koumoutsakos, On the water–carbon interaction for use in molecular dynamics simulations of graphite and carbon nanotubes, J. Phys. Chem. B107 (2003), pp. 1345–1352.
  • E.R.Cruz-Chu, A.Aksimentiev, and K.Schulten, Water–silica force field for simulating nanodevices, J. Phys. Chem. B110 (2006), pp. 21497–21508.
  • L.Gao and T.J.McCarthy, Teflon is hydrophilic. Comments on definitions of hydrophobic, shear versus tensile hydrophobicity, and wettability characterization, Langmuir24 (2008), pp. 9183–9188.
  • T.A.Ho, D.V.Papavassiliou, L.L.Lee, and A.Striolo, Liquid water can slip on a hydrophilic surface, PNAS108 (2011), pp. 16170–16175.
  • K.Hermansson, U.Lindberg, B.Hok, and G.Palmskog, Wetting properties of silicon surfaces, Proceedings of the IEEE International Conference on Solid-State Sensors Actuators, IEEE, San Francisco, CA, 1991, pp. 193–196.
  • N.Martinez, Wettability of silicon, silicon dioxide, and organosilicate glass, Master of Science thesis, University of North Texas, 2009.
  • B.Arkles, Hydrophobicity, hydrophilicity and silanes, Paint Coatings Industry Magazine, October (2006)
  • B.S.Kim, S.Shin, S.J.Shin, K.M.Kim, and H.H.Cho, Micro-nano hybrid structures with manipulated wettability using a two-step silicon etching on a large area, Nano. Res. Lett.6 (2011), pp. 333–343.
  • I.J.Haller, Covalently attached organic monolayers on semiconductor surfaces, Am. Chem. Soc.100 (1978), pp. 8050–8055.
  • T.H.Yen, Wetting characteristics of nanoscale water droplet on silicon substrates with effects of surface morphology, Mol. Simul.37 (2011), pp. 766–778.
  • R.Qiao and N.R.Aluru, Ion concentrations and velocity profiles in nanochannel electroosmotic flows, J. Chem. Phys.118 (2003), pp. 4692–4702.
  • T.D.Iordanov, G.K.Schenter, and B.C.Garrett, Sensitivity analysis of thermodynamic properties of liquid water: A general approach to improve empirical potentials, J. Phys. Chem. A110 (2006), pp. 762–771.
  • H.J.C.Berendsen, J.R.Grigera, and T.P.J.Straatsma, The missing term in effective pair potentials, Phys. Chem.91 (1987), pp. 6269–6271.
  • M.P.Allen and D.J.Tildesley, Computer Simulation of Liquids, Oxford Science Publications Oxford University Press, New York, 1989.
  • S.Miyamoto and P.A.Kollman, Settle: An analytical version of the shake and rattle algorithm for rigid water models, J. Comput. Chem.13 (1992), pp. 952–962.
  • S.J.Plimpton, R.Pollock, and M.Stevens, Particle-mesh Ewald and rRESPA for parallel molecular dynamics simulations, Proceedings of the Eighth SIAM Conference on Parallel Processing for Scientific Computing, SIAM, Philadelphia, PA, 1997, pp. 8–21.
  • S.J.Plimpton, Fast parallel algorithms for short-range molecular dynamics, J. Comput. Phys.117 (1995), pp. 1–19, see http://lammps.sandia.gov for more information.
  • A.K.Soper and M.G.Phillips, A new determination of the structure of water at 25°, Chem. Phys.107 (1986), pp. 47–60.
  • F.H.Stillinger and T.A.Weber, Computer simulation of local order in condensed phase of silicon, Phys. Rev. B31 (1985), pp. 5262–5271.
  • M.Lundgren, N.L.Allan, and T.Cosgrove, Wetting of water and water/ethanol droplets on a non-polar surface: A molecular dynamics study, Langmuir18 (2002), pp. 10462–10466.
  • M.Barisik and A.Beskok, Equilibrium molecular dynamics studies on nanoscale-confined fluids, Microfluid. Nanofluid.11 (2011), pp. 269–282.
  • J.H.Park and N.R.Aluru, Temperature-dependent wettability on a titanium dioxide surface, Mol. Simul.35 (2009), pp. 31–37.
  • J.Y.Wang, S.Betelu, and B.M.Law, Line tension approaching a first-order wetting transition: Experimental results from contact angle measurements, Phys. Rev. E63 (2001), p. 031601.
  • M.Brinkmann, J.Kierfeld, and R.Lipowsky, A general stability criterion for droplets on structured substrates, J. Phys. A: Math. General37 (2004), p. 11547.
  • T.Pompe and S.Herminghaus, Three-phase contact line energetics from nanoscale liquid surface topographies, Phys. Rev. Lett.85 (2000), pp. 1930–1933.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.