Modelling of nanobubbles at the liquid-solid interface in water and oil

Meccanica - Tập 56 - Trang 2517-2532 - 2021
Ivan V. Vorontsov1, Sergey A. Chivilikhin1, Igor Y. Popov1
1ITMO University, St. Petersburg, Russia

Tóm tắt

A model based on molecular dynamics is suggested for description of the shape of nanobubble on the liquid-solid interface. The model results are in good agreement with the known experimental AFM measurements. Nanobubbles in water and in oil are studied. The evolution, moving and interactions of nanobubbles are considered. The influence of different external factors (temperature of the liquid, temperature of the substrate, the gradient of temperature, external pressure (depth of the liquid)) and internal characteristics (surface tension, density) on the nanobubbles evolution and behaviour is investigated.

Tài liệu tham khảo

Lohse D, Zhang X (2015) Surface nanobubbles and nanodroplets. Rev Mod Phys 87(3):981–1035. https://doi.org/10.1103/RevModPhys Ball P (2003) How to keep dry in water. Nature 423:25–26 Vinogradova O, Bunkin NF, Churaev NV, Kiseleva OA, Lobeyev AV, Ninham BW (1995) Submicrocavity structure of water between hydrophobic and hydrophilic walls as revealed by optical cavitation. J Colloid Interface Sci 173:443–447 Tyrrell JWG, Attard P (2001) Images of nanobubbles on hydrophobic surfaces and their interactions. Phys Rev Lett 87:2968 Attard P (2003) Nanobubbles and the hydrophobic attraction. Adv Colloid Interface Sci 104:75–91 Holmberg M, Kdühle A, Garnaes J, Morch KA, Boisen A (2003) Nanobubble trouble on gold surfaces. Langmuir 19:10510–10513 Simonsen A, Hansen P, Klösgen BJJ (2004) Nanobubbles give evidence of incomplete wetting at a hydrophobic interface. Colloid Interface Sci 273:291–299 Zhang XH, Maeda N, Craig VSJ (2006) Physical properties of nanobubbles on hydrophobic surfaces in water and aqueous solutions. Langmuir 22:5025–5035 Yang S, Dammer S, Bremond N, Zandvliet HJW, Kooij ES, Lohse D (2007) Characterization of nanobubbles on hydrophobic surfaces in water. Langmuir 23(2007):7072–7077 Yang S, Kooij ES, Poelsema B, Lohse D, Zandvliet HJW (2008) Correlation between geometry and nanobubble distribution on HOPG surface. Europhys Lett 81(64):006 Zhang XH, Quinn A, Ducker WA (2008) Nanobubbles at the interface between water and a hydrophobic solid. Langmuir 24:4756–4764 Lou ST, Ouyang ZQ, Zhang Y, Li XJ, Hu J, Li MQ, Yang FJ (2000) Nanobubbles on solid surface imaged by atomic force microscopy. J Vac Sci Technol B 18:2573–2575 Ishida N, Inoue T, Miyahara M, Higashitani K (2000) Nano bubbles on a hydrophobic surface in water observed by tapping-mode atomic force microscopy. Langmuir 16:6377–6380 Zhang X, Lohse D (2014) Perspectives on surface nanobubbles. Biomicrofluidics 8:64 Maheshwari S, van der Hoef M, Zhang X, Lohse D (2016) Stability of surface nanobubbles: a molecular dynamics study. Langmuir 32(43):11116–11122 Frenkel YI (1948) Kinetic theory of liquids. GITTL, Moscow Galperin GA, Zemlyakov AN (1990) Mathematical billiards. Nauka, Moscow Brenner MP, Lohse D (2008) Dynamic equilibrium mechanism for surface nanobubble stabilization. Phys Rev Lett 101(1–4):6168 Mezger M, Reichert H, Schöder S, Okasinski J, Schröder H, Dosch H, Palms D, Ralston J, Honkimäki V (2006) High-resolution in situ x-ray study of the hydrophobic gap at the water-octadecyl-trichlorosilane interface. Proc Natl Acad Sci USA 103:18401–18404 Poynor A, Hong L, Robinson IK, Granick S, Zhang Z, Fenter PA (2006) How water meets a hydrophobic surface. Phys Rev Lett 97:132 Mezger M, Schöder S, Reichert H, Schröder H, Okasinski J, Honkimäki V, Ralston J, Bilgram J, Roth R, Dosch H (2008) Water and ice in contact with octadecyl-trichlorosilane functionalized surfaces: a high resolution x-ray reflectivity study. J Chem Phys 128:2569 Epstein PS, Plesset MS (1950) On the stability of gas bubbles in liquid-gas solutions. J Chem Phys 18:1505–1509 Luo L, White HS (2013) Electrogeneration of single nanobubbles at sub-50- nm-radius platinum nanodisk electrodes. Langmuir 29(35):11169–11175 Mao Y, Zhang Y (2013) Nonequilibrium molecular dynamics simulation of nanobubble growth and annihilation in liquid water. Nanoscale Microscale Thermophys Eng 17(2):79–91 Petsev ND, Shell MS, Leal LG (2013) Dynamic equilibrium explanation for nanobubbles’ unusual temperature and saturation dependence. Phys Rev E 88(1):94111 Lauga E, Brenner MP, Stone HA (2005) Handbook of experimental fluid dynamics. In: Foss CJ, YA (Eds)Springer, New York Fan TH, Vinogradova OI (2005) Hydrodynamic resistance of close-approached slip surfaces with a nanoasperity or an entrapped nanobubble. Phys Rev E 72:56863 Vinogradova OI, Yakubov GE (2006) Surface roughness and hydrodynamic boundary conditions. Phys Rev E 73:045302(R) Barbir F (2005) Pem electrolysis for production of hydrogen from renewable energy sources. Sol Energy 78(5):661–669 Schönherr H, Hain N, Walczyk W, Wesner D, Druzhinin SI (2016) Surface nanobubbles studied by atomic force microscopy techniques: facts, fiction, and open questions. Jpn J Appl Phys 55:08NA01 Rudyak V, Belkin A (2018) Molecular dynamics simulation of fluid viscosity in nanochannels. Nanosyst Phys Chem Math 9(3):349–355. https://doi.org/10.17586/2220-8054-2018-9-3-349-355 Lagarkov LN, Sergeev VM (1978) Method of molecular dynamics in statistical physics. Sov Phys Uspekhi 125(3):409–448