. Aristotele, Metaphysics", book 1, section 983b

P. Ball, Water -an enduring mystery, Nature, vol.452, pp.291-292, 2008.

Y. Xing, X. Gui, L. Pan, B. Pinchasik, Y. Cao et al., Recent experimental advances for understanding bubble-particle attachment in flotation, Adv. Coll. Int. Sci, vol.246, pp.105-132, 2017.

R. A. Pushkarova and R. G. Horn, Bubble-Solid Interactions in Water and Electrolyte Solutions, Langmuir, vol.24, pp.8726-8734, 2008.

L. A. Castillo, S. Ohnishi, S. L. Carnie, and R. G. Horn, Variation of Local Surface Properties of an Air Bubble in Water Caused by Its Interaction with Another Surface, Langmuir, vol.32, pp.7671-7682, 2016.

E. Taran, M. A. Hampton, A. V. Nguyen, and P. Attard, Anomalous Time Effect on Particle-Bubble Interactions Studied by Atomic Force Microscopy, vol.25, pp.2797-2803, 2009.

R. F. Tabor, F. Grieser, R. R. Dagastine, and D. Y. Chan, Measurement and Analysis of Forces in Bubble and Droplet Systems Using AFM, J. Coll. Int. Sci, vol.371, pp.1-14, 2012.

L. Helden, K. Dietrich, and C. Bechinger, Interactions of Colloidal Particles and Droplets with Water-Oil Interfaces Measured by Total Internal Reflection Microscopy, Langmuir, vol.32, issue.51, pp.13752-13758, 2016.

G. M. Wang, R. Prabhakar, and E. M. Sevick, Hydrodynamic Mobility of an Optically Trapped Colloidal Particle near Fluid-Fluid Interfaces, Phys. Rew. Lett, vol.103, p.248303, 2009.

T. Watarai and T. Iwai, Direct observation of submicron Brownian particles at a solid-liquid interface by extremely low coherence dynamic light scattering, App. Phys. Express, vol.7, p.32502, 2014.

J. C. Benavides-parra, D. Jacinto-méndez, G. Brotons, and M. D. Carbajal-tinoco, Brownian motion near a liquid-gas interface, J. Chem. Phys, vol.145, p.114902, 2016.

A. Maali, R. Boisgard, H. Chraibi, Z. Zhang, H. Kellay et al., Viscoelastic Drag Forces and Crossover from No-Slip to Slip Boundary Conditions for Flow near Air-Water Interfaces, Phys. Rev. Let, vol.118, pp.1-5, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01481369

O. Bonhomme, B. Blanc, L. Joly, C. Ybert, and A. Biance, Electrokinetic transport in liquid foams, Adv. Coll. Int. Sci, vol.247, pp.477-490, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01628792

D. M. Kaz, R. Mcgorty, M. Mani, M. P. Brenner, and V. N. Manoharan, Physical ageing of the contact line on colloidal particles at liquid interfaces, Nature Materials, vol.11, pp.138-142, 2012.

M. Chaplin, Theory vs experiment: what is the surface charge of water, vol.1, pp.1-28, 2009.

J. N. Israelachvili, Intermolecular and surface forces, 1992.

R. J. Hunter, Foundations of Colloid Science, 2001.

J. Perrin, Mécanisme de l'électrisation de contact et solutions colloidales, J. Chim. Phys, vol.2, pp.601-651, 1904.

M. Gouy, Sur la constitution de la chargeélectriqueà la surface d'u? electrolyte, J. Phys. Theor. Appl, vol.9, pp.457-468, 1910.

D. L. Chapman, LI. A contribution to the theory of electrocapillarity" The London, Edinburgh, and Dublin philosophical magazine and journal of science, vol.25, pp.475-481, 1913.

G. Kar, S. Chander, and T. S. Mika, The Potential Energy of Interaction Between Dissimilar Electrical Double Layers, J. Coll. Int. Sci, vol.44, issue.2, pp.347-355, 1973.

E. J. Verwey and J. T. Overbeek, Theory of the Stability of Lyophobic Colloids, 1948.

R. Hogg, T. W. Healy, and D. W. Fuerstenau, Mutual coagulation of colloidal dispersions, Trans. Faraday Soc, vol.62, pp.1638-1651, 1966.

G. R. Wiese and T. W. Healy, Effect of particle size on colloid stability, Trans. Faraday Soc, vol.66, pp.490-499, 1970.

A. Graciaa, J. Creux, and . Lachaise, Electrokinetics of gas bubbles, 2002.

S. Usui, H. Sasaki, and H. Matsukawa, The dependence of zeta potential on bubble size as determined by the dorn effect, J. Coll. Int. Sci, vol.81, issue.1, pp.80-84, 1981.

K. Okada, Y. Akagi, M. Kogure, and N. Yoshioka, Effect on surface charges of bubbles and fine particles on air flotation process, Can. J. Chem. Eng, vol.68, pp.393-399, 1990.

G. L. Collins, M. Motarjemi, and G. J. Jameson, A method for measuring the charge on small gas bubbles, J. Coll. Int. Sci, vol.63, issue.1, pp.69-75, 1978.

M. Corti, M. Bonomo, and A. Raudino, New interferometric technique to evaluate the electric charge of gas bubbles in liquids, Langmuir, vol.28, pp.6060-6066, 2012.

C. Stubenrauch and R. V. Klitzing, Disjoining pressure in thin liquid foam and emulsion films-new concepts and perspectives, J. Phys.: Condens. Matter, vol.15, p.1197, 2003.

D. Exerowa, N. V. Churaev, T. Kolarov, N. E. Esipova, N. Panchev et al., Foam and wetting films: electrostatic and steric stabilization, Adv. Coll. Int. Sci, vol.104, pp.1-24, 2003.

W. A. Ducker, Z. Xu, and J. N. Israelachvili, Measurements of hydrophobic and DLVO forces in bubble-surface interactions in aqueous solutions, Langmuir, vol.10, issue.9, pp.3279-3289, 1994.

L. M. Levering, M. R. Sierra-hernandez, and H. C. Allen, Observation of hydronium ions at the air-aqueous acid interface: Vibrational spectroscopic studies of aqueous HCl, HBr, and HI, J. Phys. Chem. C, vol.111, pp.8814-8826, 2007.

M. Sovago, R. K. Campen, G. W. Wurpel, M. Müller, H. J. Bakker et al., Vibrational response of hydrogen-bonded interfacial water is dominated by intramolecular coupling, Phys. Rev. Lett, vol.100, p.173901, 2008.

K. G. Marinova, Charging of oil-water interfaces due to spontaneous adsorption of hydroxyl ions, Langmuir, vol.12, issue.8, pp.2045-2051, 1996.

J. K. Beattie, The intrinsic charge at the hydrophobe/water interface, Colloid Stability, pp.153-164, 2010.

M. Takahashi, ? potential of microbubbles in aqueous solutions: electrical properties of the gas-water interface, J. Phys. Chem. B, vol.109, pp.21858-21864, 2005.

R. Zimmermann, S. Dukhin, and C. Werner, Electrokinetic measurements reveal interfacial charge at polymer films caused by simple electrolyte ions, J. Phys. Chem. B, vol.105, pp.8544-8549, 2001.

L. R. Pratt and A. Pohorille, Hydrophobic effects and modelling of biophysical aqueous solution interfaces, Chem. Rev, vol.102, pp.2671-2692, 2002.

M. G. Brown, D. S. Walker, E. A. Raymond, and G. L. Richmond, Vibrational sum-frequency spectroscopy of alkane/water interfaces: Experiment and theoretical simulation, J. Phys. Chem. B, vol.107, issue.1, pp.237-244, 2003.

S. I. Mamatkulov, P. K. Khabibullaev, and R. R. Netz, Water at hydrophobic substrates: curvature, pressure, and temperature effects, Langmuir, vol.20, issue.11, pp.4756-4763, 2004.

X. Yan, Central Role of Bicarbonate Anions in Charging Water/Hydrophobic Interfaces, J. Phys. Chem. Lett, vol.9, pp.96-103, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02010370

H. C. Hamaker, The London-van der Waals attraction between spherical particles, Physica, vol.4, pp.1058-1072, 1937.

E. M. Lifshitz, Theory of molecular attractive forces, Soviet Phys. JETP, vol.2, pp.73-83, 1956.

D. Bonn, J. Eggers, J. Indekeu, J. Meunier, and E. Rolley, Wetting and spreading, Rew. Modern Phys, vol.81, pp.739-805, 2009.
URL : https://hal.archives-ouvertes.fr/hal-01769971

D. B. Hough and L. R. White, The calculation of Hamaker constants from Lifshitz theory with applications to wetting phenomena, Adv. Coll. Int. Sci, vol.14, pp.3-41, 1980.

H. D. Ackler, R. A. French, and Y. Chiang, Comparisons of Hamaker Constants for Ceramic Systems with Intervening Vacuum or Water: From Force Laws and Physical Properties, J. Coll. Int. Sci, vol.179, pp.460-469, 1996.

V. Médout-marère, A simple experimental way of measuring the Hamaker constant A11 of divided solids by immersion calorimetry in apolar liquids, J. Coll. Int. Sci, vol.228, issue.2, pp.434-437, 2000.

M. A. Bevan and D. C. Prieve, Direct Measurement of Retarded van der Waals Attraction, Langmuir, vol.15, pp.7925-7936, 1999.

K. A. Karraker and C. J. Radke, Disjoining Pressures, Zeta Potentials and Surface Tensions of Aqueous Non-Ionic Surfactant/Electrolyte, Solutions: Theory and Comparison to Experiment, Adv. Coll. Int. Sci, vol.96, pp.231-64, 2002.

S. I. Karakashev, P. T. Nguyen, R. Tsekov, M. A. Hampton, and A. V. Nguyen, Anomalous Ion Effects on Rupture and Lifetime of Aqueous Foam Films Formed from Monovalent Salt Solutions up to Saturation Concentration, vol.24, pp.11587-11591, 2008.

V. V. Yaminsky, S. Ohnishi, E. A. Vogler, and R. G. Horn, Stability of Aqueous Films Between Bubbles. Part 1. The Effect of Speed on Bubble Coalescence in Purified Water and Simple Electrolyte Solutions, Langmuir, vol.26, pp.8061-8074, 2010.

R. M. Pashley and J. A. Kitchener, Surface Forces in Adsorbed Multilayers of Water on Quartz, J. Coll. Int. Sci, vol.71, pp.491-500, 1979.

D. Beaglehole and H. K. Christenson, Vapor Adsorption on Mica and Silicon: Entropy Effects, Layering, and Surface Forces, J. Phys. Chem, vol.96, pp.3395-3403, 1992.

L. R. Fisher, E. E. Mitchell, D. Hewitt, J. Ralston, and J. Wolfe, The Drainage of a Thin Aqueous Film Between a Solid Surface and an Approaching Gas Bubble, Colloids Surf, vol.52, pp.163-174, 1991.

L. D. Landau and E. M. Lifshitz, Fluid Mechanics: Landau and Lifshitz: Course of Theoretical Physics, vol.6, 2013.

H. Brenner, The slow motion of a sphere through a viscous fluid towards a plane surface, Chem. Eng. Sci, vol.16, pp.242-251, 1961.

A. J. Goldman, R. G. Cox, and H. Brenner, Slow viscous motion of a sphere parallel to a plane wall -II Couette flow, Chem. Eng. Sci, vol.22, pp.653-660, 1967.

A. V. Nguyen and G. M. Evans, Exact and global rational approximate expressions for resistance coefficients for a colloidal solid sphere moving in a quiescent liquid parallel to a slip gas-liquid interface, J. Coll. Int. Sci, vol.273, pp.262-270, 2004.

E. Lauga and T. M. Squires, Brownian motion near a partial-slip boundary: A local probe of the no-slip condition, Phys. Fluids, vol.17, p.103102, 2005.

M. J. Boussinesq, Sur l'éxistance d'une viscosité superficielle, dans la mince couche de transition separant un liquide d'une autre fluide contigue, Ann. Chim. Phys, vol.29, pp.349-357, 1913.

L. E. Scriven, Dynamics of a Fluid Interface, Chem. Engng Sci, vol.12, pp.98-108, 1960.

A. M. Davis and M. E. O'neill, The slow rotation of a sphere submerged in a fluid with a surfactant surface layer, Int. J. Mult. Flow, vol.5, issue.6, pp.413-425, 1979.

K. D. Danov, T. D. Gurkov, H. Raszillier, and F. Durs, Stokes flow caused by the motion of a rigid sphere close to a viscous interface, Chem. Eng. Sci, vol.53, pp.3413-3434, 1998.

J. B?awzdziewicz, M. L. Ekiel-je?ewska, and E. Wajnryb, Motion of a spherical particle near a planar fluid-fluid interface: The effect of surface incompressibility, J. Chem. Phys, vol.133, p.114702, 2010.

O. Manor, I. U. Vakarelski, X. Tang, S. J. Shea, G. W. Stevens et al., Hydrodynamic boundary conditions and dynamic forces between bubbles and surfaces, Phys. Rev. Lett, vol.101, p.24501, 2008.

O. Manor, I. U. Vakarelski, G. W. Stevens, F. Grieser, R. R. Dagastine et al., Dynamic forces between bubbles and surfaces and hydrodynamic boundary conditions, Langmuir, vol.24, pp.11533-11543, 2008.

G. D. Mackay and S. Mason, Approach of a solid sphere to a rigid plane interface, J. Coll. Sci, vol.16, issue.6, pp.632-635, 1961.

M. D. Carbajal-tinoco, R. Lopez-fernandez, and J. L. Arauz-lara, Asymmetry in Colloidal Diffusion near a Rigid Wall, Phys. Rew. Lett, vol.99, p.138303, 2007.

K. Ishii, T. Iwai, and H. Xia, Hydrodynamic measurement of Brownian particles at a liquid-solid interface by low-coherence dynamic light scattering, Opt. Express, vol.18, issue.7, pp.7390-7396, 2010.

L. Liu, A. Woolf, A. W. Rodriguez, and F. Capasso, Absolute position total internal reflection microscopy with an optical tweezer, vol.111, pp.5609-5615, 2014.

C. Ha, H. D. Ou-yang, and H. K. Pak, Direct measurements of colloidal hydrodynamics near flat boundaries using oscillating optical tweezers, Physica A, vol.392, issue.17, pp.3497-3504, 2013.

G. M. Wang, E. M. Sevick, E. Mittag, D. J. Searles, and D. J. Evans, Experimental demonstration of violations of the second law of thermodynamics for small systems and short time scales, Phys. Rew. Lett, vol.89, p.50601, 2002.

R. Brown, on the particles contained in the pollen of plants; and on the general existence of active molecules in organic and inorganic bodies, The Philosophical Magazine, vol.4, pp.161-173, 1827.

E. Frey and K. Kroy, Brownian motion: a paradigm of soft matter and biological physics, Ann. Phys, vol.14, issue.1, pp.20-50, 2005.

T. Li, S. Kheifets, D. Medellin, and M. G. Raizen, Measurement of the instantaneous velocity of a Brownian particle, Science, vol.328, pp.1673-1675, 2010.

R. Cox and S. Hsu, The lateral migration of solid particles in a laminar flow near a plane, Int. J. Multiphase Flow, vol.3, pp.201-222, 1977.

J. Zhang, Fundamentals and applications of inertial microfluidics: a review, Lab Chip, vol.16, pp.10-34, 2016.

M. Yang and M. Ripoll, Brownian motion in inhomogeneous suspensions, Phys. Rev. E, vol.87, pp.62110-62111, 2013.

M. Smoluchowski, Contributionà la théorie de l'endosmoseélectrique et de quelques phénomènes corrélatifs, Bull. Akad. Sci. Cracovie, vol.8, pp.182-200, 1903.

R. J. Hunter, Zeta Potential in Colloid Science. Principle and Applications, 1988.

P. Warszy?ski, Coupling of hydrodynamic and electric interactions in adsorption of colloidal particles, Adv. Coll. Int. Sci, vol.84, issue.1, pp.47-142, 2000.

H. Oshima, T. W. Healy, and L. R. White, Sedimentation velocity and potential in a dilute suspension of charged spherical colloidal particles, J. Chem. Soc., Faraday Trans. 2, vol.80, p.1299, 1984.

S. M. Tabatabaei and T. G. Van-de-ven, Tangential electroviscous drag on a sphere surrounded by a thin double layer near a wall for arbitrary particle-wall separations, J. FLuid. Mech, vol.656, pp.360-406, 2010.

S. M. Tabatabaei, T. G. Van-de-ven, and A. D. Rey, Electroviscous sphere-wall interactions, J. Coll. Int. Sci, vol.301, pp.291-301, 2006.

D. C. Prieve and S. G. Bike, Electrokinetic repulsion between two charged bodies undergoing sliding motion, Chem. Eng. Comm, vol.55, pp.149-164, 1987.

X. Wu, P. Warszy?ski, and T. G. Van-de-ven, Electrokinetic Lift: Observations and Comparisons with Theories, J. Colloid Interface Sci, vol.180, pp.61-69, 1996.

R. G. Cox, Electroviscous forces on a charged particle suspended in a flowing liquid, J. Fluid Mech, vol.338, pp.1-34, 1997.

P. Warszy?ski, X. Wu, and T. G. Nam-de-ven, Electrokinetic lift force for a charged particle moving near a charged wall -a modified theory and experiment, Colloids Surf. A, vol.140, pp.183-198, 1998.

L. Léger and J. F. Joanny, Liquid spreading, Rep. Prog. Phys, vol.55, pp.431-486, 1992.

G. Boniello, Brownian motion of partially wetted colloidal particles, 2014.
URL : https://hal.archives-ouvertes.fr/tel-01267698

T. Young, An essay on the cohesion of fluids, Philos. Trans. R. Soc. London, vol.95, pp.65-87, 1805.

D. M. Kaz, R. Mcgorty, M. Mani, M. P. Brenner, and V. N. Manoharan, Physical ageing of the contact line on colloidal particles at liquid interfaces. Supplementary Information, Nature Materials, vol.11, 2012.

A. Wang, W. B. Rogers, and V. N. Manoharan, Effects of Contact-Line Pinning on the Adsorption of Nonspherical Colloids at Liquid Interfaces, Phys. Rev. Lett, vol.119, p.108004, 2017.

M. I. Mishchenko and L. D. Travis, Capabilities and limitations of a current FORTRAN implementation of the T-matrix method for randomly oriented, rotationally symmetric scatterers, J. Quant. Spectrosc. Radiat. Transfer, vol.60, pp.309-324, 1998.

L. Helden, Single-particle evanescent light scattering simulations for total internal reflection microscopy, Appl. Opt, vol.45, issue.28, pp.7299-7308, 2006.

C. Hertlein, Experimental verification of an exact evanescent light scattering model for TIRM, Langmuir, vol.24, issue.1, pp.1-4, 2008.

A. E. Cervantes-martínez, A. Ramírez-saito, R. Armenta-calderón, M. A. Ojeda-lópez, and J. L. Arauz-lara, Colloidal diffusion inside a spherical cell, Phys. Rev. E, vol.83, p.30402, 2011.

B. L. Arenas-gómez and M. D. Carbajal-tinoco, Brownian motion of a colloidal particle immersed in a polymeric solution near a rigid wall, Rev. Mex. Fis, vol.60, pp.243-248, 2014.

J. C. Crocker and D. G. Grier, Methods of Digital Video Microscopy for Colloidal Studies, J. Coll. Int. Sci, vol.179, issue.1, pp.298-310, 1996.

S. Coertjens, R. De-dier, P. Moldenaers, L. Isa, and J. Vermant, Adsorption of ellipsoidal particles at liquid-liquid interfaces, Langmuir, vol.33, issue.11, pp.2689-2697, 2017.

D. Mukhija and M. J. Solomon, Translational and rotational dynamics of colloidal rods by direct visualization with confocal microscopy, J. Coll. Int. Sci, vol.314, issue.1, pp.98-106, 2007.

G. Rabut and J. Ellenberg, Automatic real-time three-dimensional cell tracking by fluorescence microscopy, J. Microsc, vol.216, pp.131-137, 2004.

L. Limozin and K. Sengupta, Quantitative Reflection Interference Contrast Microscopy (RICM) in Soft Matter and Cell Adhesion, CHem. Phys. Chem, vol.10, pp.2752-2768, 2009.
URL : https://hal.archives-ouvertes.fr/inserm-00424270

C. Akcay, P. Parrein, and J. P. Rolland, Estimation of longitudinal resolution in optical coherence imaging, Appl. Opt, vol.41, issue.25, pp.5256-5262, 2002.

G. Wiegand, K. R. Neumaier, and E. Sackmann, Microinterferometry: threedimensional reconstruction of surface microtopography for thin-film and wetting studies by reflection interference contrast microscopy (RICM), App. Opt, vol.37, pp.6892-6905, 1998.

C. C. Ho, A. Keller, J. A. Odell, and R. H. Ottewill, Preparation of monodisperse ellipsoidal polystyrene particles, Colloid Polym. Sci, vol.271, issue.5, pp.469-479, 1993.

, Water-Density, Specific Weight and Thermal Expantion Coefficient, 2003.

E. Toolbox, Density of aqueous solutions of inorganic sodium salts, 2017.

J. Eastoe and J. S. Dalton, Dynamic surface tension and adsorption mechanisms of surfactants at the air-water interface, Adv. Coll. Int. Sci, vol.85, pp.103-144, 2000.

N. Matubayasi, H. Matsuo, K. Yamamoto, S. Yamaguchi, and A. Matuzawa, Thermodynamic Quantities of Surface Formation of Aqueous Electrolyte Solutions -I. Aqueous Solutions of NaCl, MgCl 2 , and LaCl 3, J. Coll. Int. Sci, vol.209, pp.398-402, 1999.

B. Higgins and H. Binous, Configuration of a Sessile Drop, 2012.

E. C. Mbamala and H. H. Von-grünberg, Effective interaction of a charged colloidal particle with an air-water interface, J. Phys.: Condens. Matter, vol.14, issue.19, p.4881, 2002.

H. Wendt, Ullmann's Encyclopedia of Industrial Chemistry. Electrochemistry, 2004.

B. M. Alexander and D. C. Prieve, A Hydrodynamic Technique for Measurement of Colloidal Forces, Langmuir, vol.3, pp.788-795, 1987.

D. Zwillinger and S. Kokoska, Standard Probability and Statistics Tables and Formulae, 2000.

M. Paterno, Calculating Efficiencies and Their Uncertainties

, Batavia: Fermilab), 2004.

A. Ibrahim, H. Ohshima, S. A. Allison, and H. Cottet, Determination of effective charge of small ions, polyelectrolytes and nanomarticles by capillary electrophoresis, J. Chromatogr. A, pp.154-164, 1247.

G. E. Yakubov, O. I. Vinogradova, and H. Butt, Contact angles on hydrophobic microparticles at water-air and water-hexadecane interfaces, J. Adhes. Sci. Technol, vol.14, pp.1783-1799, 2000.

G. Boniello, Brownian diffusion of a partially wetted colloid, Nature Materials, 14, vol.9, pp.908-911, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01202128

D. C. Prieve and W. B. Russel, Simplified Predictions of Hamaker Constant from Lifshitz Theory, J. Coll. Int. Sci, vol.125, pp.1-13, 1988.

J. Marra, Direct measurements of attractive van der Waals and adhesion forces between uncharged lipid bilayers in aqueous solutions, J. Coll. Int. Sci, vol.109, issue.1, pp.11-20, 1986.

P. Warszy?ski and Z. Adamczyk, Calculations of Double-Layer Electrostatic Interactions for the Sphere/Plane Geometry, J. Coll. Int. Sci, vol.187, pp.283-295, 1997.

V. Perel and B. Shklovskii, Screening of a macroion by multivalent ions: a new boundary condition for the Poisson-Boltzmann equation and charge inversion, Phys. A, vol.274, pp.446-453, 1999.

R. Messina, C. Holm, and K. Kremer, Strong Attraction between Charged Spheres due to Metastable Ionized States, Phys. Rev. Lett, vol.85, pp.872-875, 2000.

S. A. Safran, Statistical Thermodynamics of Surfaces, Interfaces, and Membranes, 2018.

R. Messina, C. Holm, and K. Kremer, Effect of colloidal charge discretization in the primitive model, Eur. Phys. J. E, vol.4, pp.363-370, 2001.

D. Li and X. Zhao, Micro and nano bubbles on polystyrene film/water interface, Colloid Surface A, vol.459, pp.128-135, 2014.

J. N. Israelachvili and R. M. Pashley, The hydrophobic interaction is longrange, decaying exponentially with distance, Nature, vol.300, pp.341-342, 1982.

J. N. Israelachvili and R. M. Pashley, Measurement of the hydrophobic interaction between two hydrophobic surfaces in aqueous electrolyte solutions, J. Colloid. Interface Sci, vol.98, issue.2, pp.500-514, 1984.

T. D. Blake and J. A. Kitchener, Stability of aqueous films on hydrophobic methylated silica, J. Chem. Soc., Faraday Trans. 1, vol.68, pp.1435-1442, 1972.

E. E. Meyer, K. J. Rosenberg, and J. N. Israelachvili, Recent progress in understanding hydrophobic interactions, vol.103, pp.15739-15746, 2006.

M. U. Hammer, T. H. Anderson, A. Chaimovich, M. S. Shell, and J. , Israelachvili, "The search for the hydrophobic force law, Faraday Discuss, vol.146, pp.299-308, 2010.

M. Mezger, High resolution in situ x-ray study of the hydrophobic gap at the water-octadecyl-trichlorosilane interface, vol.103, pp.18401-18404, 2006.

R. F. Tabor, F. Grieser, R. R. Dagastine, and D. Y. Chan, The hydrophobic force: measurements and methods, Phys. Chem. Chem. Phys, vol.16, pp.18065-18075, 2014.

E. E. Meyer, Q. Lin, T. Hassenkam, E. Oroudjev, J. N. Israelachvili et al., Origin of the long-range attraction between surfactant-coated surfaces, vol.102, pp.6839-6842, 2005.

P. Attard, Thermodynamic analysis of bridging bubbles and a quantitative comparison with the measured hydrophobic attraction, Langmuir, vol.16, pp.4455-4466, 2000.

G. E. Yakubov, H. J. Butt, and O. I. Vinogradova, Interaction forces between hydrophobic surfaces. Attractive jump as an indication of formation of 'stable' submicrocavities, J. Phys. Chem. B, vol.104, pp.3407-3410, 2000.

M. Azadi, A. V. Nguyen, and G. E. Yakubov, Attractive forces between hydrophobic solid surfaces measured by AFM on the first approach in salt solutions and in the presence of dissolved gases, Langmuir, vol.31, pp.1941-1949, 2015.

D. Zhang, Surface nanobubbles and nanodroplets, Rev. Mod. Phys, vol.87, pp.981-1035, 2015.

W. T. Coffey, Y. P. Kalmykov, and J. T. Waldron, The Langevin equation. With applications to stochastic problems in physics, chemistry and electrical engineering, 2004.
URL : https://hal.archives-ouvertes.fr/hal-02003349

M. C. Wang and G. E. Uhlenbeck, On the Theory of the Brownian Motion II, Rev. Mod. Phys, vol.17, pp.323-342, 1945.

G. Volpe and G. Volpe, Simulation of a Brownian particle in an optical trap, Am. J. Phys, vol.81, issue.3, pp.224-230, 2013.

, Stochastic Differential Equations. An Introduction with Applications

Y. Han, A. M. Alsayed, M. Nobili, J. Zhang, T. C. Lubensky et al., Brownian Motion of an Ellipsoid, Science, issue.5799, pp.626-630, 2006.

R. D. Leonardo, S. Keen, F. Ianni, J. Leach, M. J. Padgett et al., Hydrodynamic interactions in two dimensions, Phys. Rew. E, vol.78, p.31406, 2008.

C. I. Bouzigues, P. Tabeling, and L. Bocquet, Nanofluidics in the Debye Layer at Hydrophilic and Hydrophobic Surfaces, Phys. Rev. Lett, vol.101, p.114503, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00324233

D. M. Huang, C. Cottin-bizonne, C. Ybert, and L. Bocquet, Ion-Specific Anomalous Electrokinetic Effects in Hydrophobic Nanochannels, Phys. Rew. Lett, vol.98, p.177801, 2007.
URL : https://hal.archives-ouvertes.fr/hal-01628759

L. Joly, F. Detcheverry, and A. Biance, Anomalous ? Potential in Foam Films, Phys. Rew. Lett, vol.113, p.88301, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01057550

B. Blanc, O. Bonhomme, P. Brevet, E. Benichou, C. Ybert et al., Electroosmosis near surfactant laden liquid-air interfaces, Soft Matter, vol.14, pp.2604-2609, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01909445

A. Delgado, F. Gonzalez-caballero, and J. M. Bruque, On the Zeta Potential and Surface Charge Density of Montmorillonite in Aqueous Electrolyte Solutions, J. Coll. Int. Sci, vol.113, issue.1, pp.203-211, 1986.

L. M. Vane and G. M. Zang, Effect of aqueous phase properties on clay particle zeta potential and electro-osmotic permeability: Implications for electrokinetic soil remediation processes, J. Haz. Mat, vol.55, pp.1-3, 1997.

W. W. Wilson, M. M. Wade, S. C. Holman, and F. R. Champlin, Status of methods for assessing bacterial cell surface charge properties based on zeta potential measurements, J. Microbiol. Methods, vol.43, issue.3, pp.153-164, 2001.

A. Wiacek and E. Chibowski, Zeta potential, effective diameter and multimodal size distribution in oil/water emulsion, Coll. Surf. A, vol.159, issue.2, pp.253-261, 1999.

A. Mertelj, J. L. Arauz-lara, G. Maret, T. Gisler, and H. Stark, Rotational diffusion in a bistable potential, Europhys. Lett, vol.59, pp.337-343, 2002.