[1]. Luo P, Zhang Y, Wang X, Huang S (2012) Propane-enriched CO2 immiscible flooding for improved heavy oil recovery, Energy and Fuels, 26, 4: 2124–2135. ##
[2]. Lake L W, Johns R, Rossen W R, Pope G A (2014) Fundamentals of enhanced oil recovery. ##
[3]. Anazadehsayed A, Rezaee N, Naser J, Nguyen A V (2018) A review of aqueous foam in microscale, Advances in Colloid and Interface Science, 256: 203–229. ##
[4]. Fu C, J Yu, Liu N (2018) Nanoparticle-stabilized CO2 foam for waterflooded residual oil recovery, Fuel, 234: 809–813. ##
[5]. Hurtado Y, Franco C A, Riazi M, Cortés F B (2020) Improving the stability of nitrogen foams using silica nanoparticles coated with polyethylene glycol, Journal of Molecular Liquids, 300: 112256. ##
[6]. Pickering S U (1907) Cxcvi.—emulsions, Journal of the Chemical Society, Transactions, 91, 2001–2021. ##
[7]. Worthen A J, Bagaria H G, Chen Y, Bryant S L, Huh C, Johnston K P (2013) Nanoparticle-stabilized carbon dioxide-in-water foams with fine texture, Journal of Colloid and Interface Science, 391, 142–151. ##
[8]. Aroonsri A, Worthen A J, Hariz T, Johnston K P, Huh C, Bryant S L (2013) Conditions for generating nanoparticle-stabilized CO2 foams in fracture and matrix flow, Presented at the SPE Annual Technical Conference and Exhibition. ##
[9]. Yekeen N, Kun T X, Al-Yaseri A, Sagala F, Idris A K (2021) Influence of critical parameters on nanoparticles-surfactant stabilized CO2 foam stability at sub-critical and supercritical conditions, Journal of Molecular Liquids, 338: 116658. ##
[10]. Chaturvedi K R, Narukulla R, Sharma T (2021) Effect of single-step silica nanoparticle on rheological characterization of surfactant-based CO2 foam for effective carbon utilization in subsurface applications, Journal of Molecular Liquids, 341: 16905. ##
[11]. Xu K, Zhu P, Colon T, Huh C, Balhoff M (2017) A microfluidic investigation of the synergistic effect of nanoparticles and surfactants in macro-emulsion-based enhanced oil recovery, SPE Journal, 22, 02: 459–469. ##
[12]. Ghosh P, Mohanty K K (2018) Novel application of cationic surfactants for foams with wettability alteration in oil-wet low-permeability carbonate rocks, SPE Journal, 23, 06: 2218–2231. ##
[13]. Yekeen N, Malik A A, Idris A K, Reepei N I, Ganie K (2020) Foaming properties, wettability alteration and interfacial tension reduction by saponin extracted from soapnut (Sapindus Mukorossi) at room and reservoir conditions, Journal of Petroleum Science and Engineering, 195: 107591. ##
[14]. Kumar A, Dixit C K (2017) Methods for characterization of nanoparticles, in Advances in nanomedicine for the delivery of therapeutic nucleic acids, Elsevier, 43–58. ##
[15]. Kumar N, Mandal A (2018) Surfactant stabilized oil-in-water nanoemulsion: stability, interfacial tension, and rheology study for enhanced oil recovery application, Energy and Fuels, 32, 6: 6452–6466. ##
[16]. Pal N, Kumar N, Saw R K, Mandal A (2019) Gemini surfactant/polymer/silica stabilized oil-in-water nanoemulsions: Design and physicochemical characterization for enhanced oil recovery, Journal of Petroleum Science and Engineering, 183, 106464. ##
[17]. Kuang W, Saraji S, Piri M (2018) A systematic experimental investigation on the synergistic effects of aqueous nanofluids on interfacial properties and their implications for enhanced oil recovery, Fuel, 220: 849–870. ##
[18]. Shabib-Asl A, Ayoub M A, Elraies K A (2019) A new hybrid technique using low salinity water injection and foam flooding for enhanced oil recovery in sandstone rock, Journal of Petroleum Science and Engineering, 174: 716–728. ##
[19]. Aziz R, Joekar-Niasar V, Martínez-Ferrer P J, Godinez-Brizuela O E, Theodoropoulos C, Mahani H (2019) Novel insights into pore-scale dynamics of wettability alteration during low salinity waterflooding, Scientific Reports, 9, 1: 1–13. ##
[20]. Aziz R, Niasar V, Erfani H, Martínez-Ferrer P J (2020) Impact of pore morphology on two-phase flow dynamics under wettability alteration, Fuel, 268: 117315. ##
[21]. Alizadeh M, Fatemi M (2020) Mechanistic study of the effects of dynamic fluid/fluid and fluid/rock interactions during immiscible displacement of oil in porous media by low salinity water: Direct numerical simulation, Journal of Molecular Liquids, 114544. ##
[22]. Alizadeh M, Fatemi M (2021) Pore-doublet computational fluid dynamic simulation of the effects of dynamic contact angle and interfacial tension alterations on the displacement mechanisms of oil by low salinity water, International Journal of Multiphase Flow, 143: 103771. ##
[23]. Alizadeh M, Fatemi M, Mousavi M (2021) Direct numerical simulation of the effects of fluid/fluid and fluid/rock interactions on the oil displacement by low salinity and high salinity water: pore-scale occupancy and displacement mechanisms, Journal of Petroleum Science and Engineering, 196: 107765. ##
[24]. Rashidi M, Kalantariasl A, Saboori R, Haghani A, Keshavarz A (2021) Performance of environmentally friendly water-based calcium carbonate nanofluid as enhanced recovery agent for sandstone oil reservoirs, Journal of Petroleum Science and Engineering, 196: 107644. ##
[25]. Selvan P, Jebakani D, Jeyasubramanian K, Jebaraj D J J (2022) Enhancement of thermal conductivity of water based individual and hybrid SiO2/Ag nanofluids with the usage of calcium carbonate nano particles as stabilizing agent, Journal of Molecular Liquids, 345: 117846. ##
[26]. Pourakaberian A, Mahani H, Niasar V (2021) The impact of the electrical behavior of oil-brine-rock interfaces on the ionic transport rate in a thin film, hydrodynamic pressure, and low salinity waterflooding effect, Colloids and Surfaces A: Physicochemical and Engineering Aspects, 620: 126543. ##
[27]. Farhadi H, Riahi S, Ayatollahi S, Ahmadi H (2016) Experimental study of nanoparticle-surfactant-stabilized CO2 foam: Stability and mobility control, Chemical Engineering Research and Design, 111: 449–460. ##
[28]. P Yazhgur, Noskov B A, Liggieri L, Lin S Y, Loglio G, Miller R, Ravera F (2013) Dynamic properties of mixed nanoparticle/surfactant adsorption layers, Soft Matter, 9, 12: 3305–3314. ##
[29]. Gu Y, Li D (2000) The ζ-potential of glass surface in contact with aqueous solutions, Journal of Colloid and Interface Science, 226, 2: 328–339. ##
[30]. Standnes D C, Austad T (2000) Wettability alteration in chalk: 1. Preparation of core material and oil properties, Journal of Petroleum Science and Engineering, 28, 3: 111–121. ##
[31]. Kumar K, Dao E K, Mohanty K K (2008) Atomic force microscopy study of wettability alteration by surfactants, SPE Journal Onepetro, 13, 02, 137–145. ##
[32]. Hou B, Wang Y, Cao X, Zhang J, Song X, Ding M, Chen W (2016) Surfactant-induced wettability alteration of oil-wet sandstone surface: mechanisms and its effect on oil recovery, Journal of Surfactants and Detergents, 19, 2: 315–324. ##