[1] Jian C., Poopari M.R., Liu Q., Zerpa N., Zeng H., Tang T.,
Reduction of Water/Oil Interfacial Tension by Model Asphaltenes: the Governing Role of Surface Concentration,
The Journal of Physical Chemistry B, (2016).
[3] Priyanto S., Mansoori G.A., Suwono A.,
"Structure & Properties of Micelles and Micelle Coacervates of Asphaltene Macromolecule",
Nanotechnology Proceeding of AIChE Annual Meeting, (2001).
[6] Yang F., Tchoukov P., Dettman H., Teklebrhan R.B., Liu L., Dabros T., Czarnecki J., Masliyah J., Xu Z.,
Asphaltene Subfractions Responsible for Stabilizing Water-in-Crude Oil Emulsions. Part 2 : Molecular Representations and Molecular Dynamics Simulations,
Energy & Fuels,
29: 4783-4794 (2015).
[11] Sedghi M., Goual L., Welch W., Kubelka J.,
Effect of Asphaltene Structure on Association and Aggregation Using Molecular Dynamics,
The Journal of Physical Chemistry B,
117: 5765-5776 (2013).
[13] Amjad‐Iranagh S., Rahmati M., Haghi M.,
Hoseinzadeh M., Modarress H., Asphaltene Solubility in Common Solvents: a Molecular Dynamics Simulation Study,
The Canadian Journal of Chemical Engineering,
93: 2222-2232 (2015).
[14] Silva H.S., Sodero A.C., Bouyssiere B., Carrier H., Korb J.-P., Alfarra A., Vallverdu G., Bégué D., Baraille I.,
Molecular Dynamics Study of Nanoaggregation in Asphaltene Mixtures: Effects of the N, O, and S Heteroatoms,
Energy & Fuels,
30: 5664-5656 (2016).
[16] Jover J.F., Müller E.A., Haslam A.J., Galindo A., Jackson G., Toulhoat H., Nieto-Draghi C.,
Aspects of Asphaltene Aggregation Obtained from Coarse-Grained Molecular Modeling,
Energy & Fuels,
29: 556-566 (2015).
[17] Xin S.-M., Liu Q.-K., Wang K., Chen Y., Yuan P.-Q., Cheng Z.-M., Yuan W.-K.,
Solvation of Asphaltenes in Supercritical Water: a Molecular Dynamics Study,
Chemical Engineering Science,
146: 115-125 (2016).
[18] Silva H.S., Sodero A.C., Bouyssiere B., Carrier H., Korb J.-P., Alfarra A., Vallverdu G., Bégué D., Baraille I.,
Molecular Dynamics Study of Nanoaggregation in Asphaltene Mixtures: Effects of the N, O, and S Heteroatoms,
Energy & Fuels,
30: 5656-5664 (2016).
[19] Ortega-Rodríguez A., Cruz S., Gil-Villegas A., Guevara-Rodriguez F., Lira-Galeana C.,
Molecular View of the Asphaltene Aggregation Behavior in Asphaltene-Resin Mixtures,
Energy & Fuels,
17: 1100-1108 (2003).
[26] Frigerio F., Molinari D.,
A Multiscale Approach to the Simulation of Asphaltenes,
Computational and Theoretical Chemistry, 975: 76-82 (2011).
[32] Dong J., Xu Z., Yang S., Murad S., Hinkle K.R.,
Zeolite Membranes for Ion Separations from Aqueous Solutions, Current Opinion in Chemical Engineering,
8: 15-20 (2015).
[33] Chen Y.-J., Xu G.-Y., Yuan S.-L.,
Sun H.-Y., Molecular Dynamics Simulations of AOT at Isooctane/Water Interface, Colloids and Surfaces A: Physicochemical and Engineering Aspects,
273: 174-178 (2006).
[34] Yaseen S., Mansoori G.A.,
Molecular Dynamics Studies of Interaction Between Asphaltenes and Solvents,
Journal of Petroleum Science and Engineering, (2017).
[35] van Buuren A.R., Marrink S.J., Berendsen H.J.,
A Molecular Dynamics Study of the Decane/Water Interface, The Journal of Physical Chemistry,
97: 9206-9212 (1993).