| Literature DB >> 33808369 |
Omar A El Seoud1, Nicolas Keppeler1, Naved I Malek2, Paula D Galgano1.
Abstract
The impetus for the expanding interest in ionicEntities:
Keywords: adsorption at water/air interface; catalysis; drug delivery; formation of micelles and microemulsions; gemini ionic liquid-based surfactants; ionic liquid-based surfactants; ionic liquids; mesoporous nanoparticles; molecular structure/properties relationships; polymerization
Year: 2021 PMID: 33808369 PMCID: PMC8036849 DOI: 10.3390/polym13071100
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1Formation of different morphologies as a function of the surfactant molecular structure (1-C16-3-R-imidazolium bromides; R = C2 to C16) and their concentration in water. S, H, WM, G and P refer to isotropic solution, hexagonal liquid crystals, wormlike micelles, hydrogel and ionic liquid-based surfactants precipitation, respectively [2]. Reprinted with permission from ref. [2]. Copright 2021 Elsevier.
Figure 2Number of publications on ionic liquids (a) and ionic liquid-based surfactants (b) between years 2000–2020, source SciFinder database.
Scheme 1Schematic representation of the synthesis of ionic liquids and ionic liquid-based surfactants. MW and US refer to microwave and ultrasound irradiation, respectively.
Scheme 2Synthetic route to ionic liquid-based surfactants with ester- or amide group side chain. Redrawn from Kanjilal [46].
Scheme 3Synthetic route to gemini ionic liquid-based surfactants via the use of a protecting group. Redrawn from Baltazar [45].
Scheme 4Synthetic route to gemini ionic liquid-based surfactants, via the use of dihaloalkanes. Redrawn from Baltazar [45].
Literature data on aqueous solutions of ionic liquid-based surfactants at 25 °C. Adsorption and micellar parameters calculated from surface tension data.
| Entry | Cation 1 | Anion 2 | cmc × 103 | γcmc | Πcmc | p | Δ | ||
|---|---|---|---|---|---|---|---|---|---|
|
| |||||||||
| 1 | C8C1Im+ | Cl− | 116 [ | 28.3 [ | 43.3 [ | 2.682 [ | 104 [ | 1.8 [ | −43.33 [ |
| 2 | Br− | 121 [ | 41 [ | 44.9 [ | 2.7 [ | 60 [ | 1.8 [ | −36.5 [ | |
| 3 | I− | 94.9 [ | 28.2 [ | 44.4 [ | 1.4 [ | 117 [ | 2.0 [ | ||
| 4 | C1SO3− | 220 [ | 29.0 [ | 1.0 [ | |||||
| 5 | C4SO3− | 140 [ | 28.5 [ | 1.6 [ | |||||
| 8 | C10C1Im+ | Cl− | 39.90 [ | 27.3 [ | 33.7 [ | 1.9 [ | 85 [ | 2.55 [ | −30.16 [ |
| 9 | Br− | 20 [ | 39 [ | 35.5 [ | 1.82 [ | 91 [ | 1.61 [ | ||
| 10 | C1SO3− | 60 [ | 28.5 [ | 1.5 [ | |||||
| 12 | C12C1Im+ | Cl− | 13.17 [ | 38.7 [ | 33.6 [ | 2.3 [ | 72 [ | 2.4 [ | −32.03 [ |
| 13 | Br− | 4.3 [ | 35 [ | 25.26 [ | 1.80 [ | 67 [ | 2.35 [ | ||
| 14 | I− | 4.6 [ | 31.7 [ | 37.7 [ | 4.47 [ | 37 [ | 2.80 [ | ||
| 15 | C1SO3− | 14 [ | 28.5 [ | 2.1 [ | |||||
| 17 | C14C1Im+ | Cl− | 2.98 [ | 34.15 [ | 36.65 [ | 2.25 [ | 56 [ | 2.89 [ | −33.81 [ |
| 18 | Br− | 1.9 [ | 37.2 [ | 41.4 [ | 1.74 [ | 67 [ | 3.6 [ | −47.48 [ | |
| 19 | C16C1Im+ | Cl− | 0.87 [ | 37.0 [ | 34.8 [ | 3.4 [ | 49 [ | 3.2 [ | −35.23 [ |
| 20 | Br− | 0.8 [ | 41 [ | 27.44 [ | 2.00 [ | 83.14 [ | 3.42 [ | −36.83 [ | |
| 21 | C18C1Im+ | Cl− | 0.40 [ | 42.0 [ | 29.8 [ | 3.7 [ | 45 [ | 3.6 [ | |
| 22 | C12C2Im+ | Br− | 6.40 [ | 38.09 [ | 33.93 [ | 3.09 [ | 53.74 [ | 2.70 [ | |
| 23 | C16C2Im+ | Cl− | 0.88 [ | 35.4 [ | 2.6 [ | 63 [ | 3.62 [ | −38.29 [ | |
| 24 | Br− | 0.55 [ | 39.8 [ | 40.3 [ | 2.7 [ | 61 [ | 3.65 [ | −38.19 [ | |
| 25 | C10VnIm+ | Br− | 27.20 [ | 34.5 [ | 37.3 [ | 1.86 [ | 89.3 [ | 2.44 [ | −50.60 [ |
| 26 | C12VnIm+ | Br− | 7.00 [ | 34.1 [ | 38.4 [ | 2.03 [ | 81.8 [ | 2.80 [ | −56.31 [ |
| 28 | C14VnIm+ | Br− | 1.85 [ | 33.8 [ | 38.6 [ | 2.18 [ | 76.2 [ | 3.40 [ | −61.30 [ |
| 29 | C16VnIm+ | Br− | 0.60 [ | 37.7 [ | 39.1 [ | 3.1 [ | 53 [ | 3.63 [ | −37.09 [ |
| 30 | C12C3Im+ | Br− | 5.05 [ | 37.56 [ | 34.46 [ | 2.20 [ | 75.48 [ | 2.85 [ | |
| 31 | C16C3Im+ | Cl− | 0.71 [ | 35.2 [ | 2.2 [ | 75 [ | 3.82 [ | −40.78 [ | |
| 32 | Br− | 0.44 [ | 39.7 [ | 2.3 [ | 73 [ | 3.80 [ | −40.46 [ | ||
| 33 | C16AlIm+ | Br− | 0.51 [ | 38.7 [ | 2.6 [ | 63 [ | 3.74 [ | −38.90 [ | |
| 34 | C8C4Im+ | Br− | 41 [ | 40 [ | 37 [ | 1.3 [ | 126.9 [ | 2.3 [ | −51.1 [ |
| 35 | C10C4Im+ | Br− | 6.3 [ | 36 [ | |||||
| 36 | C12C4Im+ | Br− | 2.4 [ | 38 [ | 37.10 [ | 2.02 [ | 82.21 [ | 3.18 [ | −53.2 [ |
| 37 | C16C4Im+ | Cl− | 0.50 [ | 38.0 [ | 2.1 [ | 80 [ | 3.89 [ | −41.86 [ | |
| 38 | Br− | 0. 1 [ | 45 [ | 1.9 [ | 86 [ | 3.92 [ | −42.73 [ | ||
| 39 | C16C5Im+ | Cl− | 0.35 [ | 39.6 [ | 1.6 [ | 106 [ | 4.15 [ | −46.37 [ | |
| 40 | C8C8Im+ | Br− | 5.6 [ | 32 [ | |||||
| 41 | C12C12Im+ | Br− | 0.1 [ | 28 [ | |||||
| 42 | C10C1C1Im+ | Br− | 43.0 [ | 30.9 [ | 1.7 [ | 99.4 [ | |||
| 43 | C12C1C1Im+ | Cl− | 12.27 [ | 31.21 [ | 40.79 [ | 0.95 [ | 1.75 [ | 2.75 [ | −78.78 [ |
| 44 | C10C1C10Im+ | Cl− | 1.23 [ | 32.7 [ | 1.98 [ | 83.5 [ | −46.66 [ | ||
| 45 | C8Py+ | Cl− | 181 [ | 36.84 [ | 34.6 [ | 1.70 [ | 98 [ | 1.6 [ | |
| 46 | Br− | 180 [ | 41.9 [ | 66 [ | |||||
| 48 | C10Py+ | Cl− | 65.5 [ | ||||||
| 49 | Br− | 30 [ | 40.7 [ | 61 [ | |||||
| 50 | C11Py+ | Br− | 19.5 [ | ||||||
| 51 | C12Py+ | Cl− | 14.0 [ | ||||||
| 52 | Br− | 9.3 [ | 39.3 [ | 71 [ | |||||
| 53 | C13Py+ | Br− | 4.57 [ | ||||||
| 54 | C14Py+ | Cl− | 3.20 [ | ||||||
| 55 | Br− | 2.2 [ | 38.0 [ | 86 [ | |||||
| 56 | C16Py+ | Cl− | 0.99 [ | 49 [ | 23.0 [ | 1.17 [ | 142.0 [ | 3.00 [ | −25.7 [ |
| 57 | Br− | 0.62 [ | 49 [ | 23.0 [ | 0.91 [ | 142 [ | 3.03 [ | −25.70 [ | |
| 58 | C8-( | Cl− | 166 [ | 31.80 [ | 40.1 [ | 1.67 [ | 99 [ | 3.0 [ | |
| 63 | C8-( | Cl− | 170 [ | 32.38 [ | 39.2 [ | 1.71 [ | 97 [ | 1.9 [ | |
| 65 | C10-( | Cl− | 45 [ | 27.9 [ | 121 [ | 1.62 [ | |||
| 66 | C12-( | Cl− | 13 [ | 27.9 [ | 108 [ | 2.22 [ | |||
| 67 | Br− | 10 [ | 39.2 [ | 32.9 [ | 1.84 [ | 90.3 [ | 2.8 [ | −55.00 [ | |
| 68 | C14-( | Cl− | 3.1 [ | 28.0 [ | 92 [ | 2.82 [ | |||
| 69 | Br− | 2.26 [ | 38.8 [ | 33.3 [ | 2.09 [ | 79.4 [ | 3.1 [ | −58.39 [ | |
| 70 | C16-( | Cl− | 0.8 [ | 27.9 [ | 80 [ | 3.39 [ | |||
| 71 | Br− | 0.508 [ | 37.6 [ | 34.5 [ | 2.38 [ | 69.7 [ | 3.8 [ | −63.00 [ | |
| 72 | C18-( | Cl− | 0.3 [ | 27.8 [ | 76 [ | 3.87 [ | |||
| 73 | C8-( | Cl− | 175 [ | 31.00 [ | 40.7 [ | 1.65 [ | 101 [ | 2.2 [ | |
| 79 | C10C1Pn+ | Br− | 31 [ | 28.6 [ | 3.8 [ | 44 [ | |||
| 80 | C12C1Pn+ | Br− | 16 [ | 25.1 [ | 4.4 [ | 38 [ | |||
| 81 | C14C1Pn+ | Br− | 7.4 [ | 28.7 [ | 4.5 [ | 37 [ | |||
| 82 | C16C1Pn+ | Br− | 3.3 [ | 31.2 [ | 5.2 [ | 32 [ | |||
| 83 | C18C1Pn+ | Br− | 1.5 [ | 32.7 [ | 4.4 [ | 38 [ | |||
| 86 | C12C1Pyrro+ | Cl− | 19.60 [ | 34.4 [ | 36.6 [ | 2.4 [ | 69 [ | 2.3 [ | |
| 87 | Br− | 15 [ | 42.4 [ | 30.3 [ | 3.03 [ | 54.8 [ | |||
| 88 | C14C1Pyrro+ | Br− | 3.30 [ | 42.7 [ | 30.0 [ | 3.55 [ | 46.8 [ | ||
| 89 | C16C1Pyrro+ | Br− | 0.860 [ | 41.2 [ | 31.5 [ | 3.67 [ | 45.2 [ | ||
| 90 | C18C1Pyrro+ | Cl− | 0.42 [ | 36.5 [ | 35.3 [ | 3.5 [ | 48 [ | 3.7 [ | |
| 92 | C8C4Pyrro+ | Br− | 150 [ | ||||||
| 93 | C12C4Pyrro+ | Br− | 6 [ | ||||||
| 98 | C12C1Pip+ | Cl− | 19.79 [ | 36.5 [ | 35.3 [ | 2.4 [ | 68.5 [ | 3.35 [ | |
| 99 | Br− | 11 [ | 41.43 [ | 31.57 [ | 2.31 [ | 71.82 [ | 2.33 [ | ||
| 100 | C14C1Pip+ | Br− | 3.22 [ | 41.23 [ | 31.77 [ | 2.35 [ | 70.65 [ | 2.90 [ | |
| 101 | C16C1Pip+ | Br− | 0.68 [ | 37.3 [ | 31.86 [ | 2.63 [ | 61 [ | 3.51 [ | |
| 102 | C18C1Pip+ | Cl− | 0.45 [ | 37.7 [ | 34.1 [ | 3.3 [ | 50 [ | 3.8 [ | |
| 103 | C16C1Aze+ | Br− | 0.590 [ | 37.9 [ | 65 [ | ||||
| 104 | C16C1Azo+ | Br− | 0.51 [ | 38.8 [ | 75 [ | ||||
| 105 | C10C1Mor+ | Br− | 30 [ | ||||||
| 106 | C12C1Mor+ | Cl− | 21.80 [ | 34.6 [ | 36.4 [ | 2.5 [ | 66 [ | 2.3 [ | |
| 107 | Br− | 9.6 [ | |||||||
| 108 | C14C1Mor+ | Br− | 4.0 [ | 41.2 [ | 2.79 [ | 59 [ | 3.2 [ | −15.4 [ | |
| 109 | C16C1Mor+ | Br− | 0.74 [ | 29.9 [ | 38.5 [ | 2.69 [ | 71 [ | 3.6 [ | −9.5 [ |
| 110 | C18C1Mor+ | Br− | 0.33 [ | ||||||
| 111 | C8Gu+ | Cl− | 75 [ | 24.5 [ | 4.60 [ | 36.2 [ | |||
| 112 | C10Gu+ | Cl− | 22 [ | 23.5 [ | 3.78 [ | 44.2 [ | |||
| 113 | C12Gu+ | Cl− | 5.5 [ | 24.1 [ | 3.93 [ | 42.3 [ | |||
| 115 | C8C1C1Gu+ | Cl− | 7.2 [ | 35.4 [ | 3.66 [ | 45.4 [ | |||
| 116 | C10C1C1Gu+ | Cl− | 2.1 [ | 33.3 [ | 3.40 [ | 48.9 [ | |||
| 117 | C12C1C1Gu+ | Cl− | 0.67 [ | 32.5 [ | 3.05 [ | 54.5 [ | |||
| 118 | C8Ph3P+ | Br− | 32 [ | ||||||
| 120 | C10Ph3P+ | Br− | 6.1 [ | 40.00 [ | |||||
| 122 | C12Ph3P+ | Br− | 2.0 [ | 40.80 [ | 26.5 [ | 2.24 [ | 74 [ | 3.01 [ | −60.2 [ |
| 123 | C14Ph3P+ | Br− | 0.33 [ | 40.60 [ | 1.88 [ | 88 [ | −56.0 [ | ||
| 124 | C16Ph3P+ | Br− | 0.10 [ | 40.25 [ | 25.8 [ | 1.02 [ | 163 [ | −75.3 [ | |
| 125 | C18Ph3P+ | Br− | 0.018 [ | ||||||
|
| |||||||||
| 127 | (CH3)4N+ | AOT− | 2.90 [ | 29.4 [ | 1.60 [ | 104 [ | |||
| 129 | (C2H5)4N+ | AOT− | 2.45 [ | 28.7 [ | 1.43 [ | 116 [ | |||
| 130 | (C3H7)4N+ | C12SO4− | 1.46 [ | 31.8 [ | 67 [ | ||||
| 131 | AOT− | 0.97 [ | 26.1 [ | 1.71 [ | 97 [ | ||||
| 132 | (C4H9)4N+ | C8SO4− | 24.5 [ | 32.0 [ | 3.75 [ | ||||
| 133 | C10SO4− | 4.17 [ | 31.6 [ | 4.03 [ | |||||
| 134 | C12SO4− | 0.525 [ | 31.2 [ | 4.47 [ | |||||
| 135 | C14SO4− | 0.26 [ | 5.43 [ | 31 [ | |||||
| 136 | AOT− | 0.77 [ | 1.63 [ | 102 [ | |||||
| 137 | C4Py+ | DBS− | 0.92 [ | 29.69 [ | 42.31 [ | 2.31 [ | 72.08 [ | 3.92 [ | |
| 138 | C4C1Pyrro+ | C12SO4− | 2.7 [ | 34.3 [ | 37.9 [ | 2.27 [ | 74 [ | 3.5 [ | |
| 139 | C4C1Im+ | C8SO3− | 135 [ | 40.0 [ | 1.6 [ | ||||
| 140 | C12SO3− | 4.4 [ | 36.9 [ | 35.9 [ | 1.14 [ | 145 [ | 3.05 [ | ||
| 141 | C8SO4− | 33.4 [ | 26.1 [ | 45.9 [ | 2.44 [ | 68 [ | 2.60 [ | −49.7 [ | |
| 142 | C10SO4− | 8.8 [ | 34.7 [ | 37.9 [ | 2.81 [ | 59 [ | 2.7 [ | ||
| 143 | C12SO4− | 1.8 [ | 31.9 [ | 40.3 [ | 2.53 [ | 66 [ | 3.4 [ | ||
| 144 | C14SO4− | 0.5 [ | 30.5 [ | 42.1 [ | 1.66 [ | 10 [ | 4.2 [ | ||
| 145 | DBS− | 1.08 [ | 29.18 [ | 42.82 [ | 2.09 [ | 79.86 [ | 3.94 [ | ||
| 146 | AOT− | 1.78 [ | 25.7 [ | 86 [ | |||||
| 147 | TC− | 0.55 [ | 24.8 [ | 111 [ | |||||
| 148 | C5C1Im+ | C12SO4− | 1.6 [ | 57.86 [ | 13.64 [ | 0.96 [ | 173.4 [ | −59.23 [ | |
| 149 | DBS− | 0.32 [ | 30.92 [ | 42.38 [ | 1.91 [ | 86.76 [ | −1.03 [ | ||
| 150 | C6C1Im+ | C8SO4− | 14.2 [ | 25.6 [ | 45.2 [ | 1.9 [ | 84.7 [ | 2.9 [ | |
| 151 | C12SO4− | 1.1 [ | 27.1 [ | 44.9 [ | 2.4 [ | 68.5 [ | 4.1 [ | ||
| 152 | C7C1Im+ | DBS− | 0.12 [ | 34.21 [ | 39.09 [ | 1.35 [ | 122.64 [ | −1.15 [ | |
|
| |||||||||
| 153 | C8C1Im+ | C8SO3− | 12 [ | 43.7 [ | 2.9 [ | ||||
| 154 | C8SO4− | 4.1 [ | 24.4 [ | 47.6 [ | 2.5 [ | 66.0 [ | 3.3 [ | ||
| 155 | C12SO4− | 0.4 [ | 26.0 [ | 46.0 [ | 2.4 [ | 68.5 [ | 4.3 [ | ||
| 156 | C10C1Im+ | C12SO4− | 0.1 [ | 25.4 [ | 47.2 [ | 2.36 [ | 70 [ | 5.0 [ | |
| 157 | C16Py+ | C8SO3− | 54 [ | ||||||
| 158 | C8SO4− | 24 [ | |||||||
| 162 | C16(CH3)3N+ | C8SO3− | 88 [ | ||||||
| 163 | C8SO4− | 26 [ | |||||||
1 Abbreviations: Imidazolium (Im⁺), pyridinium (Py⁺), 2-pyrrolidinonium (Pn⁺), pyrrolidinium (Pyrro⁺), piperidinium (Pip⁺), azepanium (Aze⁺), azocanium (Azo⁺), morpholinium (Mor⁺), guanidinium (Gu⁺), ammonium (N⁺) and phosphonium (P⁺). 2 Acronyms: DBS, AOT, and TC refer to dodecylbenzene sulfonate, bis (2-ethylhexyl) sulfosuccinate, and aerosol-OT trichain analog, respectively. 3 Critical micelle concentration (cmc) from surface tension measurements. ⁴ Surface tension at cmc. ⁵ Surface pressure at cmc. ⁶ Surface excess concentration at the interface. ⁷ Minimum area per molecule at the water/air interface. ⁸ Surface tension reduction efficiency (by 20 mN m⁻1). ⁹ Gibbs free energy of surfactant adsorption at the water/air interface.
Literature data on aqueous solutions of gemini ionic liquid-based surfactants at 25 °C. Adsorption and micellar parameters calculated from surface tension data. All surfactants have two bromides as counterions, except for entries 54 and 55, which have three bromides as counterions.
| Entry | Cation 1 | cmc × 103 | γcmc | Πcmc | p | Δ | ||
|---|---|---|---|---|---|---|---|---|
| 1 | (C12Im)2C2)2+ | 0.55 [ | 33.6 [ | 1.26 [ | 135 [ | 4.54 [ | ||
| 2 | (C16Im)2C2)2+ | 0.0341 [ | ||||||
| 3 | (C16Im)2C3)2+ | 0.0048 [ | ||||||
| 4 | (C10Im)2C4)2+ | 4.50 [ | 35.2 [ | 1.25 [ | 133 [ | 3.14 [ | ||
| 5 | (C12Im)2C4)2+ | 0.72 [ | 35.7 [ | 37.8 [ | 1.19 [ | 140 [ | 3.94 [ | −50.93 [ |
| 6 | (C14Im)2C4)2+ | 0.10 [ | 37.2 [ | 0.88 [ | 188 [ | 5.04 [ | ||
| 7 | (C16Im)2C4)2+ | 0.0222 [ | ||||||
| 8 | (C16Im)2C5)2+ | 0.0269 [ | ||||||
| 9 | (C12Im)2C6)2+ | 0.78 [ | 39.5 [ | 1.16 [ | 143 [ | 3.73 [ | ||
| 10 | (C16Im)2C6)2+ | 0.0501 [ | ||||||
| 11 | (C4Im)2C8)2+ | 32.3 [ | 47 [ | |||||
| 12 | (C16Im)2C8)2+ | 0.0512 [ | ||||||
| 13 | (C1Im)2C10)2+ | 14.9 [ | 38 [ | |||||
| 14 | (C4Im)2C10)2+ | 11.7 [ | 38 [ | |||||
| 15 | (C16Im)2C10)2+ | 0.0607 [ | ||||||
| 16 | (C4Im)2C12)2+ | 7.2 [ | 46 [ | |||||
| 17 | (C10Im)2C12)2+ | 0.6 [ | 48 [ | |||||
| 18 | (C16Im)2C12)2+ | 0.0619 [ | ||||||
| 19 | ((C12SMeIm)2C2)2+ | 0.32 [ | 39.7 [ | 2.60 [ | 63 [ | 3.93 [ | −45.57 [ | |
| 20 | ((C14SMeIm)2C2)2+ | 0.072 [ | 42.9 [ | 2.12 [ | 78 [ | 4.53 [ | −47.80 [ | |
| 22 | ((C12SMeIm)2C3)2+ | 0.26 [ | 40.7 [ | 2.13 [ | 77 [ | 4.06 [ | −48.21 [ | |
| 23 | ((C14SMeIm)2C3)2+ | 0.063 [ | 45.8 [ | 3.09 [ | 53 [ | 4.42 [ | −42.31 [ | |
| 25 | ((C12SMeIm)2C4)2+ | 0.22 [ | 40.8 [ | 2.06 [ | 80 [ | 4.12 [ | −47.51 [ | |
| 26 | ((C14SMeIm)2C4)2+ | 0.058 [ | 46.6 [ | 3.10 [ | 53 [ | 4.39 [ | −42.82 [ | |
| 28 | ((C12OHIm)2C3)2+ | 0.72 [ | 30.0 [ | 2.53 [ | 65 [ | 3.91 [ | −49.67 [ | |
| 29 | ((C12OHIm)2C4)2+ | 0.76 [ | 28.1 [ | 2.33 [ | 71 [ | 4.11 [ | −50.63 [ | |
| 30 | ((C12OHIm)2C5)2+ | 1.02 [ | 32.9 [ | 2.29 [ | 72 [ | 3.72 [ | −52.46 [ | |
| 31 | ((C12OHIm)2C6)2+ | 1.07 [ | 35.2 [ | 2.98 [ | 55 [ | 3.44 [ | −44.78 [ | |
| 32 | ((C12OHIm)2C8)2+ | 1.14 [ | 37.6 [ | 1.90 [ | 87 [ | 3.58 [ | −49.45 [ | |
| 33 | ((C12)3N)2C2)2+ | 1.995 [ | 39 [ | 0.769 [ | 251.7 [ | 5.1 [ | −20.19 [ | |
| 34 | ((C12)3N)2C3)2+ | 1.412 [ | 40 [ | 1.012 [ | 147.3 [ | 5.1 [ | −19.30 [ | |
| 35 | ((C12)3N)2C6)2+ | 1.445 [ | 42 [ | 1.131 [ | 146.8 [ | 6.9 [ | −19.63 [ | |
| 36 | ((C8C1C1N)2(OE)3Gly)2+ | 1.02 [ | 55.2 [ | 0.802 [ | −47.5 [ | |||
| 37 | ((C10C1C1N)2(OE)3Gly)2+ | 0.859 [ | 32.55 [ | 1.466 [ | 3.863 [ | −53.9 [ | ||
| 38 | ((C12C1C1N)2(OE)3Gly)2+ | 0.711 [ | 30.57 [ | 3 [ | 3.64 [ | −37.1 [ | ||
| 39 | ((C14C1C1N)2(OE)3Gly)2+ | 0.243 [ | 34.5 [ | 0.947 [ | 4.727 [ | −69.6 [ | ||
| 40 | ((C16C1C1N)2(OE)3Gly)2+ | 0.631 [ | 37 [ | 1.314 [ | 4.14 [ | −55 [ | ||
| 41 | ((C8C1C1N)2(OE)4Gly)2+ | 1.822 [ | 49.08 [ | 0.519 [ | 3.417 [ | −80.7 [ | ||
| 42 | ((C10C1C1N)2(OE)4Gly)2+ | 1.7 [ | 46.96 [ | 0.417 [ | 3.222 [ | −85.3 [ | ||
| 43 | ((C12C1C1N)2(OE)4Gly)2+ | 1.239 [ | 28.54 [ | 1.06 [ | 4.124 [ | −67.1 [ | ||
| 44 | ((C14C1C1N)2(OE)4Gly)2+ | 0.333 [ | 34.81 [ | 0.813 [ | 4.63 [ | −75 [ | ||
| 45 | ((C16C1C1N)2(OE)4Gly)2+ | 0.389 [ | 36.51 [ | 0.785 [ | 4.71 [ | −75.1 [ | ||
| 46 | ((C8C1C1N)2(OE)5Gly)2+ | 0.701 [ | 52.22 [ | 0.519 [ | −83 [ | |||
| 47 | ((C10C1C1N)2(OE)5Gly)2+ | 0.649 [ | 48.28 [ | 0.827 [ | 3.539 [ | −62.5 [ | ||
| 48 | ((C12C1C1N)2(OE)5Gly)2+ | 0.607 [ | 33.78 [ | 1.4 [ | 4 [ | −55.1 [ | ||
| 49 | ((C14C1C1N)2(OE)5Gly)2+ | 0.502 [ | 33.61 [ | 1.04 [ | 4.389 [ | −65.2 [ | ||
| 50 | ((C16C1C1N)2(OE)5Gly)2+ | 0.398 [ | 43.92 [ | 0.925 [ | 5.91 [ | −60.0 [ | ||
| 51 | (C10Pyrro)2C4)2+ | 3.3 [ | 43.2 [ | 1.37 [ | 121.2 [ | 2.96 [ | ||
| 52 | (C12Pyrro)2C4)2+ | 0.5 [ | 41.7 [ | 1.46 [ | 113.3 [ | 3.80 [ | ||
| 53 | (C14Pyrro)2C4)2+ | 0.1 [ | 40.4 [ | 1.59 [ | 104.4 [ | 4.41 [ | ||
| 54 | ((C8Im)3Am)3+ | 4.3 [ | 33 [ | 1.11 [ | 1.50 [ | 3.13 [ | ||
| 55 | ((C8Im)3Bn)3+ | 2.2 [ | 40 [ | 1.37 [ | 1.21 [ | 2.81 [ |
1 Abbreviations: Imidazolium (Im), thioether-functionalized methylimidazolium (SMeIm), hydroxyl-functionalized imidazolium (OHIm), quaternary ammonium (CxCyCzN), ethylene oxide units (OE), glycol (Gly), pyrrolidinium (Pyrro), triethylamine (Am) and 1,3,5-trimethylbenzene (Bn). 2 Measurements done at 20 °C.
Scheme 5Molecular structures and acronyms of the cationic head-groups of ionic liquid-based surfactants.
Figure 3Dependence of log cmc on the number of carbons in the hydrophobic chain (Cx) for cationic ionic liquid-based surfactants. Data taken from conductivity measurements. The abbreviations of the surfactant head-ions are those listed in the footnotes of Table 1.
Figure 4Log critical micelle concentration (cmc) as a function of the size of heterocyclic amine ring structures of cationic ionic liquid-based surfactants. Data taken from Schnee and Palmer [150].
Figure 5Dependence of log cmc on the number of carbons in the head group side chain (Cy) of (a) cationic ionic liquid-based surfactants and (b) anionic ionic liquid-based surfactants. Data taken from conductivity measurements; see references [80,91,126,151,152].
Scheme 6Molecular structures of the gemini ionic liquid-based surfactants reported in this review.
Figure 6Dependence of cmc on the number of carbon atoms in the hydrocarbon chain (from C8 to C16) for the surfactant series with one ethylene oxide spacer [161]. Reprinted with permission from ref. [161]. Copright 2021 Elsevier.
Figure 7cmc as a function of spacer length from m = 2–12 in ((C₁₆Im)₂(CH₂)m)Br₂ series [157].
Figure 8Dependence of the aggregate morphologies on the structure of the cation and anion in gemini (A) and trimeric (B) biamphiphilic surfactants.
Figure 9Schematic representation of the electrostatic (a) and steric (b) stabilization mechanisms of nanoparticles. In the former mechanism, the nanoparticles (NPs) are stabilized due to electrostatic repulsion of the positively charged outer layer. Steric repulsion between the surfactant hydrophobic chains contributes to NP stabilization [219]. Reprinted with permission from ref. [219]. Copright 2021 Springer Nature.
Figure 10Schematic representation for the production of FeO2H particles coated with an ionic liquid-based surfactant layer [194]. Reprinted with permission from ref. [194]. Copright 2021 Elsevier.
Figure 11Schematic representation of the effects of C₁₀C₁ImCl and ionic liquid-based surfactant plus the co-template (P123) on the morphology of the formed SiO2 NPs. HCl is used to hydrolyze tetraethyl orthosilicate silane (TEOS), the silicate precursor [195]. Reprinted with permission from ref. [195]. Copright 2021 Elsevier.
Figure 12(a) MACn = mesoporous silica nanoparticles prepared by strategy (i) and (b) MBCn = mesoporous silica nanoparticles prepared by strategy (ii) [198]. Reprinted with permission from ref. [198]. Copright 2021 Elsevier.
Figure 13Schematic representation for the fabrication of functionalized mesoporous silica nanoparticles [200]. Reprinted with permission from ref. [200]. Copright 2021 Elsevier.
Figure 14Schematic representation for the fabrication of functional molybdenum-containing mesoporous silica nanoparticles [201]. Reprinted with permission from ref. [201]. Copright 2021 Elsevier.
Figure 15Micrographs showing the dependence of Nd2O3 nanoparticles shape on the concentration of N-(3-cocoamidopropyl)-betaine (CAPB), parts (a–d). Part (e) shows the nanoparticles fabricated in the absence of the surfactant [204]. Reprinted with permission from ref. [204]. Copright 2021 Elsevier.
Figure 16Schematic representation of the effects of surfactant concentrations on the morphologies of Nd2O3 nanoparticles. Close to the surfactant critical micelle concentration, small, spherical micelles are formed, leading after calcination, to spherical Nd2O3 nanoparticles. Micellar morphology changes at higher [surfactant] lead to the formation of leaf-shaped Nd2O3 nanoparticles [204]. Reprinted with permission from ref. [204]. Copright 2021 Elsevier.
Figure 17Schematic representation of the effect of surfactant anion on the formation of chitosan nanoparticles. Interactions of the chloride ion with the 1-octyl-3-methylimidazolium cations at the aggregate interface lead to the formation of larger aggregates. This is hindered in the case of the voluminous octyl sulfate anion [61]. Reprinted with permission from ref. [61]. Copright 2021 Elsevier.
Figure 18Schematic representation of the role of the nano-segregated polar and non-polar domains of the ionic liquid-based surfactant in the formation of interconnected network of α-Fe2O3 nanoparticles [205]. Reprinted with permission from ref. [205].
Figure 19Types of microemulsions according to Windsor. Water and oil phases are colored in turquoise and yellow color, respectively. W, O and BC refer to water, oil and bicontinuous phase, respectively [3]. Reprinted with permission from ref. [3]. Copright 2021 Elsevier.
Figure 20The complete cycle of activators regenerated by electron transfer- atom transfer radical polymerization) (AGET–ATRP) of MMA, polymer precipitation and microemulsion regeneration in the system C12C1ImBr/C4C1ImBF4/MMA. EBiB and AA refer to the polymerization initiator ethyl-2-bromo-isobutyrate and ascorbic acid, respectively [230]. Reprinted with permission from ref. [230]. Copright 2021 ACS Publications.
Figure 21Schematic representation of ionic liquid-based surfactant-mediated fabrication of nanoparticles of polystyrene (PS) without and with magnetic properties (MNP) [234]. Reprinted with permission from ref. [234]. Copright 2021 ACS Publications.
Figure 22SEM images of polymers fabricated by microemulsion polymerization of MMA in the presence of the polymerizable ionic liquid-based surfactant-b. Parts (A–C) refer to polymer gel as produced, the gel after treatment with aqueous solutions of 0.1 mol L⁻1 of KPF6 and NaBr, respectively [227].