[1] D. Attwood, A.T. Florence, Surfactant Systems:Their Chemistry, Pharmacy and Biology, Chapman, New York, 1983. [2] D. Kumar, M.A. Rub, Interaction of ninhydrin with chromium-glycylglycine complex in the presence of dimeric Gemini surfactants, J. Mol. Liq. 250(2018) 329-334. [3] D. Kumar, M.A. Rub, M. Akram, Kabir-ud-Din, Interaction of chromium(III) complex of glycylphenylalanine with ninhydrin in aqueous and cetyltrimethylammonium bromide (CTAB) micellar media, Tenside Surfactant Deterg. 51(2014) 157-163. [4] H.K. Elsadig, M.B. Abdalfatah, Comparative study for the analysis of cefixime trihydrate and its degraded products by two RP-HPLC methods, one its official and other developed validated method, Int. J. Curr. Res. 9(2017) 50511-50514. [5] S. Schreier, S.V.P. Malheiros, E. de Paula, Surface active drugs:self-association and interaction with membranes and surfactants. Physicochemical and biological aspects, Biochim. Biophys. Acta 1508(2000) 210-234. [6] M.A. Hoque, M.M. Alam, M.R. Molla, S. Rana, M.A. Rub, M.A. Halim, M.A. Khan, F. Akhtar, Interaction of cetyltrimethylammonium bromide with drug in aqueous/electrolyte solution:A combined conductometric and molecular dynamics method study, Chin. J. Chem. Eng. 26(2018) 159-167. [7] M. Rahman, M.A. Khan, M.A. Rub, M.A. Hoque, Effect of temperature and salts on the interaction of cetyltrimethylammonium bromide with ceftriaxone sodium trihydrate drug, J. Mol. Liq. 223(2016) 716-724. [8] D. Kumar, M.A. Rub, N. Azum, A.M. Asiri, Mixed micellization study of ibuprofen (sodium salt) and cationic surfactant (conventional as well as gemini), J. Phys. Org. Chem. 31(2018) e3730. [9] N. Azum, M.A. Rub, A.M. Asiri, Self-association and micro-environmental properties of sodium salt of ibuprofen with BRIJ-56 under the influence of aqueous/urea solution, J. Dispers. Sci. Technol. 38(2017) 96-104. [10] M.A. Rub, N. Azum, F. Khan, A.M. Asiri, Surface, micellar, and thermodynamic properties of antidepressant drug nortriptyline hydrochloride with TX-114 in aqueous/urea solutions, J. Phys. Org. Chem. 30(2017) 3676. [11] T.A. Khan, M. Nazir, I. Ali, A. Kumar, Removal of chromium (VI) from aqueous solution using guar gum-nano zinc oxide biocomposite adsorbent, Arab. J. Chem. 10(2013) 2388-2398. [12] T. Burks, A. Uheida, M. Saleemi, M. Eita, M.S. Toprak, M. Muhammed, Removal of chromium (VI) using surface modified superparamagnetic iron oxide nanoparticles, Sep. Sci. Technol. 48(2013) 1243-1251. [13] M.J. Rosen, Surfactants and Interfacial Phenomena, 3rd ed., Wiley, New York, 2004. [14] W. Caetano, M. Tabak, Interaction of chlorpromazine and trifluoperazine with anionic sodium dodecyl sulfate (SDS) micelles:Electronic absorption and fluorescence studies, J. Colloid Interface Sci. 225(2000) 69-81. [15] E. Minatti, D. Zanette, Salt effects on the interaction of poly(ethylene oxide) and sodium dodecyl sulfate measured by conductivity, Colloids Surf. A Physicochem. Eng. Asp. 113(1996) 237-246. [16] G.B. Ray, I. Chakraborty, S. Ghosh, S.P. Moulik, C. Holgate, K. Glenn, R.N. Palepu, Studies on binary and ternary amphiphile combinations of tetradecyltrimethylammonium bromide (C14TAB), tetradecyl triphenylphosphonium bromide (C14TPB), and tetradecyl pyridinium bromide (C14PB). A critical analysis of their interfacial and bulk behaviors, J. Phys. Chem. 111(2007) 9828-9837. [17] S.P. Moulik, S. Ghosh, Surface chemical and micellization behaviours of binary and ternary mixtures of amphiphiles (Triton X-100, Tween-80 and CTAB) in aqueous medium, J. Mol. Liq. 72(1997) 145-161. [18] M.A. Rub, A.M. Asiri, J.M. Khan, F. Khan, R.H. Khan, Kabir-ud-Din, A study of interaction between antidepressant drug nortriptyline hydrochloride with gelatin, J. Taiwan Inst. Chem. Eng. 45(2014) 2068-2074. [19] M.K. Al-Muhanna, M.A. Rub, N. Azum, S.B. Khan, A.M. Asiri, Effect of gelatin on micellization and microstructural behavior of amphiphilic amitriptyline hydrochloride drug solution:A detailed study, J. Chem. Thermodyn. 89(2015) 112-122. [20] M.A. Rub, A.M. Asiri, D. Kumar, N. Azum, F. Khan, Temperature dependant mixed micellization behavior of a drug-AOT mixture in an aqueous medium, Acta Phys. -Chim. Sin. 30(2014) 699-707. [21] E. Carey, S.R. Patil, C. Stubenrauch, Conductivity measurements as a method for studying ionic technical grade surfactants, Tenside Surfactant Deterg. 45(2008) 120-125. [22] S.P. Moulik, M.E. Haque, P.K. Jana, A.R. Das, Micellar properties of cationic surfactants in pure and mixed states, J. Phys. Chem. 100(1996) 701-708. [23] Y. Marcus, Ion Properties, Wiley, Marcel Dekker, New York, 1997(ISBN:058515774X 9780585157740). [24] E.R. Nightangle Jr., Phenomenological theory of ion solvation. Effective radii of hydrated ions, J. Phys. Chem. 63(1959) 1381-1387. [25] A. Gonzalez-Perez, J.L. Del Castillo, J. Czapkiewicz, J.R. Rodriguez, Conductivity, density, and adiabatic compressibility of dodecyldimethylbenzylammonium chloride in aqueous solutions, J. Phys. Chem. B 105(2001) 1720-1724. [26] J.R. Rodriguez, A. Gonzalez-Perez, J.L. Del Castillo, J. Czapkiewicz, Thermodynamics of micellization of alkyldimethylbenzylammonium chlorides in aqueous solutions, J. Colloid Interface Sci. 250(2002) 438-443. [27] R. Kakehashi, M. Shizuma, S. Yamamura, Mixed micelles containing sodium laurate:Effect of chain length, polar head group, and added salt, Tenside Surfactant Deterg. 49(2012) 488-493. [28] M.A. Rub, N. Azum, F. Khan, A.M. Asiri, Aggregation of sodium salt of ibuprofen and sodium taurocholate mixture in different media:a tensiometry and fluorometry study, J. Chem. Thermodyn. 121(2018) 199-210. [29] M.A. Rub, N. Azum, A.M. Asiri, Binary mixtures of sodium salt of ibuprofen and selected bile salts:Interface, micellar, thermodynamic, and spectroscopic study, J. Chem. Eng. Data 62(2017) 3216-3228. [30] S. Aktar, M.R. Molla, S. Mahbub, M.A. Rub, M.A. Hoque, D.M.S. Islam, Effect of temperature and salt/alcohol on the interaction of surfactants with moxifloxacin hydrochloride:A multitechnique approach, J. Dispers. Sci. Technol. (2018), https://doi.org/10.1080/01932691.2018.1472005. [31] D. Kumar, N. Azum, M.A. Rub, A.M. Asiri, Aggregation behavior of sodium salt of ibuprofen with conventional and Gemini surfactant, J. Mol. Liq. 262(2018) 86-96. [32] M.N. Islam, T. Kato, Temperature dependence of the surface phase behaviour and micelle formation of some nonionic surfactants, J. Phys. Chem. 107(2003) 965-971. [33] M.A. Rub, N. Azum, A.M. Asiri, Self-association behavior of an amphiphilic drug nortriptyline hydrochloride under the influence of inorganic salts, Russ. J. Phys. Chem. B 10(2016) 1007-1013. [34] M. Rahman, M.A. Khan, M.A. Rub, M.A. Hoque, A.M. Asiri, Investigation of the effect of various additives on the clouding behavior and thermodynamics of polyoxyethylene (20) sorbitan monooleate in absence and presence of ceftriaxone sodium trihydrate drug, J. Chem. Eng. Data 62(2017) 1464-1474. [35] M.A. Hoque, M.O.F. Patoary, M.M. Rashid, M.R. Molla, M.A. Rub, Physicochemical investigation of the mixed micelle formation between tetradecyltrimethylammonium bromide and dodecyltrimethylammonium chloride in water and aqueous solution of sodium chloride, J. Solut. Chem. 46(2017) 682-703. [36] M.El. Nakaly, L.D. Ford, S.E. Friberg, D.W. Larsen, The structure of lamellar lyotropic liquid crystals from lecithin and alkanediols, J. Colloid Interface Sci. 84(1981) 228-234. [37] B. Bergenstahl, P. Stenius, Phase diagram of dioleoylphosphatidylcholine with formamide, methylformamide and dimethylformamide, J. Phys. Chem. 91(1987) 5944-5948. [38] M.A. Hoque, M.O.F. Patoary, M.R. Molla, M.A. Halim, M.A. Khan, M.A. Rub, Interaction between cetylpyridinium chloride and amino acids:A conductometric and computational method study, J. Dispers. Sci. Technol. 38(2017) 1578-1587. [39] J.J.H. Nusselder, J.B. Engberts, Toward a better understanding of the driving force for micelle formation and micellar growth, J. Colloid Interface Sci. 148(1992) 353-361. [40] D. Kumar, M.A. Rub, Effect of anionic surfactant and temperature on micellization behavior of promethazine hydrochloride drug in absence and presence of urea, J. Mol. Liq. 238(2017) 389-396. [41] M.A. Rub, F. Khan, D. Kumar, A.M. Asiri, Study of mixed micelles of promethazine hydrochloride (PMT) and nonionic surfactant (TX-100) mixtures at different temperatures and compositions, Tenside Surfactant Deterg. 52(2015) 236-244. [42] D. Kumar, M.A. Rub, Effect of sodium taurocholate on aggregation behavior of amphiphilic drug solution, Tenside Surfactant Deterg. 52(2015) 464-472. [43] D. Kumar, M.A. Rub, Aggregation behavior of amphiphilic drug promazine hydrochloride and sodium dodecylbenzenesulfonate mixtures under the influence of NaCl/urea at various concentration and temperatures, J. Phys. Org. Chem. 29(2016) 394-405. [44] F. Khan, M.A. Rub, N. Azum, A.M. Asiri, Mixtures of antidepressant amphiphilic drug imipramine hydrochloride and anionic surfactant:Micellar and thermodynamic investigation, J. Phys. Org. Chem. 31(2018) e3812. [45] L.J. Chen, S.Y. Lin, C.C. Huang, E.M. Chen, Temperature dependence of critical micelle concentration of polyoxyethylenated non-ionic surfactants, Colloids Surf. A Physicochem. Eng. Asp. 135(1998) 175-181. [46] H.S. Nalwa, Handbook of Surfaces and Interfaces of Materials, vol. 3, Academic Press, 2001, p. 405(ISBN-13:978-0125139106). [47] K. Vamvaca, I. Jelesarov, D. Hilvert, Kinetics and thermodynamics of ligand binding to a molten globular enzyme and its native counterpart, J. Mol. Biol. 382(2008) 971-977. [48] M. Rahman, M.A. Hoque, M.A. Khan, M.A. Rub, A.M. Asiri, Effect of different additives on the phase separation behavior and thermodynamics of p-tertalkylphenoxy poly (oxyethylene) ether in absence and presence of drug, Chin. J. Chem. Eng. 26(2018) 1110-1118. [49] I. Jelesarov, H.R. Bosshard, Isothermal titration calorimetry and differential scanning calorimetry as complementary tools to investigate the energetics of biomolecular recognition, J. Mol. Recognit. 12(1999) 3-18. [50] S.K. Shivaji, A.K. Rakshit, Investigation of the properties of decaoxyethylene ndodecyl ether, C12E10, in the aqueous sugar-rich region, J. Surfactant Deterg. 7(2004) 305-316. [51] A.K. Rakshit, B. Sharma, The effect of amino acids on the surface and thermodynamic properties of poly[oxyethylene(10)]lauryl ether in aqueous solution, Colloid Polym. Sci. 281(2003) 45-51. [52] R. Jha, J.C. Ahluwalia, Thermodynamics of micellization of some decyl poly (oxyethyleneglycol) ether in aqueous urea solution, J. Chem. Soc. Faraday Trans. 89(1993) 3465-3469. [53] L.J. Chen, S.Y. Lin, C.C. Huang, Effect of hydrophobic chain length of surfactants on enthalpy-entropy compensation of micellization, J. Phys. Chem. 102(1998) 4350-4356. [54] G. Sugihara, M. Hisatomi, Enthalpy-entropy compensation phenomenon observed for different surfactants in aqueous solution, J. Colloid Interface Sci. 219(1999) 31-36. [55] M.A. Hoque, F. Ahmed, M.A. Halim, M.R. Molla, S. Rana, M.A. Rahman, M.A. Rub, Influence of salt and temperature on the interaction of bovine serum albumin with cetylpyridinium chloride:Insights from experimental and molecular dynamics simulation, J. Mol. Liq. 260(2018) 121-130. [56] M.R. Amin, S. Mahbub, S. Hidayathulla, M.M. Alam, M.A. Hoque, M.A. Rub, An estimation of the effect of mono/poly-hydroxy organic compounds on the interaction of tetradecyltrimethylammonium bromide with levofloxacin hemihydrate antibiotic drug, J. Mol. Liq. 269(2018) 417-425. |