| Literature DB >> 26393567 |
Jing Zhang1, Jingjiang Liu2, Yong Zuo3, Rongmin Wang4, Yubing Xiong5,6.
Abstract
In this study, thermo-responsive polymeric nanogels were facilely prepared via one-step cross-linking coEntities:
Keywords: CO2 conversion; UCST; cross-linking polymerization; ionic liquids; nanogels; thermo-response
Mesh:
Substances:
Year: 2015 PMID: 26393567 PMCID: PMC6332038 DOI: 10.3390/molecules200917378
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Synthetic route of biimidazolium-based ionic liquids. (n = 2, 3, 5).
Figure 11H-NMR of [C6VIm]Br in different deuterium solvents. ((1) 0.6 mL DMSO-d6 + 0.1 mL D2O, 30 min later; (2) DMSO-d6 + 0.05 mL D2O, immediately; (3) 0.6 mL DMSO-d6). * The peak is ascribed to the solvent.
Figure 21H-NMR of [C8VIm]Br in different deuterium solvents. ((1) D2O; (2) DMSO-d6). * The peak is ascribed to the solvent.
Figure 31H-NMR of [C12VIm]Br in different deuterium solvents. ((1) D2O, 30 min later; (2) D2O, immediately; (3) DMSO-d6). * The peak is ascribed to the solvent.
Scheme 2Schematic illustration of one-step synthesis of BIm-based nanogels, and their thermo-responsive behavior with temperature changes.
Size, PDI, and ζ-potential of nanogels prepared with different feed ratios in methanol.
| Entry | Monomer and Cross-Linker | Feed Ratio (Molar Ratio) a | Dh (nm) | PDI | ξ-Potential (mV) |
|---|---|---|---|---|---|
| 1 | [C6VIm]Br + EGDMA | 1:1 | precipitated | - | - |
| 2 | [C6VIm]Br + EGDMA | 3:1 | 159 | 0.28 | 11.5 |
| 3 | [C6VIm]Br + EGDMA | 5:1 | 137 | 0.26 | 12.4 |
| 4 | [C6VIm]Br + EGDMA | 10:1 | 103 | 0.43 | 14.1 |
| 5 | [C6VIm]Br + EGDMA | 15:1 | 71 | 0.09 | 18.1 |
| 6 | [C8VIm]Br + EGDMA | 10:1 | 125 | 0.36 | 13.5 |
| 7 | [C12VIm]Br + EGDMA | 10:1 | 148 | 0.45 | 11.9 |
| 8 | [C6VIm]Br + DVB | 3:1 | 111 | 0.39 | 14.6 |
| 9 | [C6VIm]Br + DVB | 5:1 | 88 | 0.29 | 16.2 |
| 10 | [C6VIm]Br + DVB | 10:1 | 47 | 0.33 | 17.1 |
a: [CnVIm]Br to cross-linker; Dh: hydrodynamic diameter; PDI: polydispersion. - No data are available.
Figure 4SEM images of BIm-based nanogels. ((a) [C6VIm]Br:EGDMA = 10:1; (b) [C8VIm]Br:EGDMA = 10:1; (c) [C12VIm]Br:EGDMA = 10:1; (d) [C6VIm]Br:EGDMA = 15:1; (e) [C6VIm]Br:EGDMA = 5:1; (f) [C6VIm]Br:EGDMA = 3:1; (g) [C6VIm]Br:DVB = 3:1; (h) [C6VIm]Br:DVB = 5:1; (i) [C6VIm]Br:DVB = 10:1). The scale bar is 500 nm.
Figure 5Temperature dependence of transmittance at 500 nm and hydrodynamic diameters (Dh) for 5 wt % nanogel in methanol. ((a) [C6VIm]Br:EGDMA = 5:1; (b) [C6VIm]Br:EGDMA = 10:1; (c) [C6VIm]Br : DVB = 3:1; (d) [C6VIm]Br:DVB = 10:1).
Figure 6FTIR spectra of BIm-based nanogels with different monomers and feed ratio. ((a) [C6VIm]Br:DVB = 5:1; (b) [C6VIm]Br:DVB = 10:1; (c) [C6VIm]Br:EGDMA = 10:1; (d) [C8VIm]Br:EGDMA = 10:1; (e) [C12VIm]Br:EGDMA = 10:1).
Figure 7TG curves of BIm-based nanogels with different monomers and feed ratio. ((a) [C6VIm]Br:EGDMA = 15:1; (b) [C8VIm]Br:EGDMA = 10:1; (c) [C6VIm]Br:EGDMA = 5:1; (d) [C6VIm]Br:EGDMA = 10:1; (e) [C12VIm]Br:DVB = 10:1; (f) [C6VIm]Br:DVB = 3:1).
Figure 8FTIR spectra of poly(EGDMA-co-[C6VIm]Br). ((a) dried sample; and (b) the sample containing methanol).
Performance of BIm-based nanogel catalyst for the cycloaddition reaction of CO2 with ECH in different temperature a.
| Entry | Catalyst b | Temperature (°C) | CO2 (MPa) | Yield (%) | Selectivity (%) |
|---|---|---|---|---|---|
| 1 | 3:1 | 160 | 3 | 99.7 | 89.0 |
| 2 | 5:1 | 160 | 3 | 99.8 | 93.0 |
| 3 | 10:1 | 160 | 3 | 100 | 100 |
| 4 | 15:1 | 160 | 3 | 100 | 96.4 |
| 5 | 5:1 | 120 | 3 | 87.7 | 99.3 |
| 6 | 5:1 | 140 | 3 | 96.1 | 96.1 |
| 7 | 5:1 | 150 | 3 | 99.5 | 99.2 |
| 8 | 5:1 | 160 | 2 | 95.7 | 97.3 |
| 9 | 5:1 | 160 | 5 | 99.7 | 100 |
a: Reaction condition: ECH 3 mL, nanogel 0.1 g, time 6 h; b: feed ratio of [C6VIm]Br to EGDMA.