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during hydrate decomposition and their effect on hydrate growth. J. Chem. Phys. 142, 214701
(2015)
77. T. Uchida, K. Yamazaki, K. Gohara, Gas nanobubbles as nucleation acceleration in the gashydrate memory effect. J. Phys. Chem. C 120, 26620–26629 (2016)
78. N. Maeda, Interfacial nanobubbles and the memory effect of natural gas hydrates. J. Phys.
Chem. C 122, 11399–11406 (2018)
79. Y. Guo, W. Xiao, W. Pu, J. Hu, J. Zhao, L. Zhang, CH 4 nanobubbles on the hydrophobic solidwater interface serving as the nucleation sites of methane hydrate. Langmuir 34, 10181–10186
(2018)
80. C.E. Brennen, Cavitation and bubble dynamics (Oxford University Press, New York, 1995)
81. K. Shinoda, Iceberg formation and solubility. J. Phys. Chem. 81, 1300–1302 (1977)
82. A.E. Markham, K.A. Kobe, The solubility of gases in liquids. Chem. Rev. 28, 519–588 (1941)
83. R. Battino, T.R. Rettich, T. Tominaga, The solubility of oxygen and ozone in liquids. J. Phys.
Chem. Ref. Data 12, 163–178 (1983)
84. R. Battino, T.R. Rettich, T. Tominaga, The solubility of nitrogen and air in liquids. J. Phys.
Chem. Ref. Data 13, 563–600 (1984)
85. A. Chapoy, A.H. Mohammadi, D. Richon, B. Tohidi, Gas solubility measurement and
modeling for methane-water and methane-ethane-n-butane-water systems at low temperature
conditions. Fluid Phase Equilib. 220, 113–121 (2004)
86. L.C. Price, Aqueous solubility of methane at elevated pressures and temperatures. AAPG
Bull. Am. Assoc. Pet. Geol. 63, 1527–1533 (1979)
87. B. Sowa, X.H. Zhang, K. Kozieski, P.G. Hartley, N. Maeda, Influence of dissolved atmospheric
gases on the spontaneous emulsification of alkane-ethanol-water systems. J. Phys. Chem. C
115, 8768–8774 (2011)
88. N. Maeda, K.J. Rosenberg, J.N. Israelachvili, R.M. Pashley, Further studies on the effect of
degassing on the dispersion and stability of surfactant-free emulsions. Langmuir 20, 3129–
3137 (2004)
89. X. Zhang, D.Y.C. Chan, D. Wang, N. Maeda, Stability of interfacial nanobubbles. Langmuir
29, 1017–1023 (2013)
90. X.H. Zhang, X. Zhang, J. Sun, Z. Zhang, G. Li, H. Fang, X. Xiao, X. Zeng, J. Hu, Detection
of novel gaseous states at the highly oriented pyrolytic graphite-water interface. Langmuir
23, 1778–1783 (2007)
91. P.W. Atkins, Physical chemistry, 6th edn. (Oxford University Press, Oxford, 1998)
92. R.P. Feynman, R.B. Leighton, M. Sands, The Feynman Lectures on Physics (Addison-Wesley,
Reading, Massachusetts, 1963)
93. R.J. Hunter, Foundations of Colloid Science (Clarendon Press, Oxford, 1986)
94. A.W. Adamson, A.P. Gast, Physical Chemistry of Surfaces, 6th edn. (Wiley, New York, 1997)
95. S. Bobev, K.T. Tait, Methanol—inhibitor or promoter of the formation of gas hydrates from
deuterated ice? Am. Mineral. 89, 1208–1214 (2004)
96. M. Cha, K. Shin, J. Kim, D. Chang, Y. Seo, H. Lee, S.-P. Kang, Thermodynamic and kinetic
hydrate inhibition performance of aqueous ethylene glycol solutions for natural gas. Chem.
Eng. Sci. 99, 184–190 (2013)
97. K.K. Ostergaard, B. Tohidi, R. Anderson, A.C. Todd, A. Danesh, Can 2-propanol form
clathrate hydrates? Ind. Eng. Chem. Res. 41, 2064–2068 (2002)
98. F. Farhang, A.V. Nguyen, M.A. Hampton, Influence of sodium halides on the kinetics of CO 2
hydrate formation. Energy Fuels 28, 1220–1229 (2014)
99. A. Botti, F. Bruni, S. Imberti, M.A. Ricci, A.K. Soper, Ions in water: the microscopic structure
of a concentrated HCl solution. J. Chem. Phys. 121, 7840–7848 (2004)
100. T. Buanes, B. Kvamme, A. Svandal, Two approaches for modelling hydrate growth. J. Math.
Chem. 46, 811–819 (2009)
101. A.K. Soper, J.L. Finney, Hydration of methanol in aqueous-solution. Phys. Rev. Lett. 71,
4346–4349 (1993)
