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Tetrapolymer Network Hydrogels via Gum Ghatti-Grafted and N–H/C–H-Activated Allocation of Monomers for Composition-Dependent Superadsorption of Metal Ions
Author(s) -
Himarati Mondal,
Mrinmoy Karmakar,
Arnab Dutta,
Manas Mohan Mahapatra,
Mousumi Deb,
Madhushree Mitra,
Joy Sankar Deb Roy,
Chandan Roy,
Pijush Kanti Chattopadhyay,
Nayan Ranjan Singha
Publication year - 2018
Publication title -
acs omega
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.779
H-Index - 40
ISSN - 2470-1343
DOI - 10.1021/acsomega.8b01218
Subject(s) - thermogravimetric analysis , chemistry , x ray photoelectron spectroscopy , differential scanning calorimetry , crystallinity , fourier transform infrared spectroscopy , self healing hydrogels , adsorption , metal ions in aqueous solution , polymer chemistry , nuclear chemistry , chemical engineering , materials science , organic chemistry , metal , crystallography , physics , engineering , thermodynamics
Herein, gum ghatti (GGTI)- g -[sodium acrylate (SA)- co -3-( N -(4-(4-methyl pentanoate))acrylamido)propanoate (NMPAP)- co -4-(acrylamido)-4-methyl pentanoate (AMP)- co - N -isopropylacrylamide (NIPA)] (i.e., GGTI- g -TetraP), a novel interpenetrating tetrapolymer network-based sustainable hydrogel, possessing extraordinary physicochemical properties and excellent recyclability, has been synthesized via grafting of GGTI and in situ strategic protrusion of NMPAP and AMP during the solution polymerization of SA and NIPA, through systematic multistage optimization of ingredients and temperature, for ligand-selective superadsorption of hazardous metal ions (M(II)), such as Sr(II), Hg(II), and Cu(II). The in situ allocation of NMPAP and AMP via N-H and C-H activations, grafting of GGTI into the SA- co -NMPAP- co -AMP- co -NIPA (TetraP) matrix, the effect of comonomer compositions on ligand-selective adsorption, crystallinity, thermal stabilities, surface properties, swellability, adsorption capacities (ACs), mechanical properties, and the superadsorption mechanism have been apprehended via extensive microstructural analyses of unloaded and/or loaded GGTI- g -TetraP1 and GGTI- g -TetraP2 bearing SA/NIPA in 8:1 and 2:1 ratios, respectively, using Fourier transform infrared (FTIR), 1 H/ 13 C/DEPT-135 NMR, X-ray photoelectron spectroscopy (XPS), thermogravimetric analysis, differential scanning calorimetry, X-ray diffraction, field emission scanning electron microscopy, rheological analysis, and energy-dispersive X-ray spectrometry, along with measuring % gel content, pH at point of zero charge (pH PZC ), and % graft ratio. The thermodynamically spontaneous chemisorption has been inferred from FTIR, XPS, fitting of kinetics data to pseudo-second-order model, and activation energies. The chemisorption data have exhibited excellent fitting to the Langmuir isotherm model. For Sr(II), Hg(II), and Cu(II), ACs were 1940.24/1748.36, 1759.50/1848.03, and 1903.64/1781.63 mg g -1 , respectively, at 293 K, 0.02 g of GGTI- g -TetraP1/2, and initial concentration of M(II) = 500-1000 ppm.

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