| Literature DB >> 25157348 |
Vinod Kumar Gupta1, Deepak Pathania2, Bhanu Priya2, Amar Singh Singha3, Gaurav Sharma2.
Abstract
Grafting method, through microwave radiation technique is very effective in terms of time consumption, cost effectiveness and environmental friendliness. Via this method, delignified Grewia optiva identified as a waste biomass, was graft copolymerized with methylmethacrylate (MMA) as an principal monomer in a binary mixture of ethyl methacrylate (EMA) and ethyl acrylate (EA) under microwave irradiation (MWR) using ascorbic acid/H2O2 as an initiator system. The concentration of the comonomer was optimized to maximize the graft yield with respect to the primary monomer. Maximum graft yield (86.32%) was found for dGo-poly(MMA-co-EA) binary mixture as compared to other synthesized copolymer. The experimental results inferred that the optimal concentrations for the comonomers to the optimized primary monomer was observed to be 3.19 mol/L × 10(-1) for EMA and 2.76 mol/L × 10(-1) for EA. Delignified and graft copolymerized fiber were subjected to evaluation of physicochemical properties such as swelling behavior and chemical resistance. The synthesized graft copolymers were characterized with Fourier transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM), thermogravimetric analysis (TGA) and X-ray diffraction techniques. Thermal stability of dGo-poly(MMA-co-EA) was found to be more as compared to the delignified Grewia optiva fiber and other graft copolymers. Although the grafting technique was found to decrease percentage crystallinity and crystallinity index among the graft copolymers but there was significant increase in their acid/base and thermal resistance properties. The grafted samples have been explored for the adsorption of hazardous methylene dye from aqueous system.Entities:
Keywords: comonomer; delignified Grewia optiva fiber; methylene blue; microwave; physicochemical properties
Year: 2014 PMID: 25157348 PMCID: PMC4127470 DOI: 10.3389/fchem.2014.00059
Source DB: PubMed Journal: Front Chem ISSN: 2296-2646 Impact factor: 5.221
Scheme 1Probable mechanism of graft copolymerization of binary monomer mixture.
Evaluation of optimum reaction parameter for grafting of binary vinyl monomer mixture onto delignified .
| 1 | 1.87 + 2.39 | 33.62 | 6.14 | 19.63 |
| 2 | 1.87 + 2.79 | 44.68 | 6.99 | 20.43 |
| 3 | ||||
| 4 | 1.87 + 3.59 | 44.16 | 5.38 | 20.13 |
| 5 | 1.87 + 3.99 | 29.74 | 3.26 | 17.38 |
| 6 | 1.87 + 1.84 | 40.38 | 10.93 | 17.26 |
| 7 | 1.87 + 2.31 | 55.28 | 11.98 | 18.34 |
| 8 | ||||
| 9 | 1.87 + 3.22 | 64.18 | 9.93 | 19.35 |
| 10 | 1.87 + 3.68 | 36.72 | 4.97 | 16.67 |
Optimal conditions for grafting: exposure time = 10 min, microwave power = 110 W, ASC conc. = 3.74 mol/L × 10−2, H2O2 conc. = 0.97 mol/L × 10−1 (Singha et al., 2014).
Figure 1(A) Acid resistance (B) base resistance of delignified .
Figure 2Swelling behavior of delignified .
Figure 3Scanning electron micrographs of .
Figure 4FTIR spectra of (A) raw .
Percentage crystallinity (%Cr) and crystalline index (C.I.) of raw, delignified and graft copolymers prepared under the influence of MWR.
| Raw | – | 903 | 432 | 67.64 | 0.52 |
| Delignified | – | 396 | 158 | 71.48 | 0.60 |
| d | 26.54 | 467 | 216 | 68.37 | 0.53 |
| d | 51.56 | 511 | 428 | 54.41 | 0.48 |
| d | 86.32 | 508 | 472 | 51.31 | 0.43 |
Thermogravimetric analysis of grafted and ungrafted samples.
| Raw fiber | – | 241.18 | 356.38 | 287.74 | 326.35 | 348.77 | 18.93 |
| Delignified fiber | – | 250.13 | 375.39 | 302.45 | 348.31 | 368.13 | 18.03 |
| dGo-g-poly(MMA) | 26.54 | 261.13 | 432.18 | 294.11 | 333.62 | 401.11 | 13.84 |
| dGo-g-poly(MMA-co-EMA) | 51.56 | 270.23 | 490.24 | 304.45 | 345.65 | 413.43 | 7.63 |
| dGo-g-poly(MMA-co-EA) | 86.32 | 273.63 | 523.52 | 325.54 | 357.84 | 434.84 | 4.57 |
q.
| 5 | 2.92 | 3.07 | 3.22 | 3.40 |
| 10 | 3.45 | 3.78 | 3.92 | 4.16 |
| 15 | 4.77 | 4.82 | 5.25 | 5.48 |
| 20 | 7.05 | 7.35 | 7.50 | 7.75 |
| 25 | 7.12 | 7.46 | 7.82 | 7.98 |
| 30 | 7.18 | 7.64 | 7.92 | 8.20 |