Publication Cover
Journal of Environmental Science and Health, Part A
Toxic/Hazardous Substances and Environmental Engineering
Volume 52, 2017 - Issue 2
578
Views
13
CrossRef citations to date
0
Altmetric
ARTICLES

Synthesis of magnetic epichlorohydrin cross-linked carboxymethyl cellulose microspheres and their adsorption behavior for methylene blue

, , &
Pages 106-116 | Received 29 Apr 2016, Accepted 26 Aug 2016, Published online: 21 Oct 2016

References

  • Girods, P.; Dufou, A.; Fierro, V.; Rogaume, Y.; Rogaume, C.; Zoulalian, A.; Celzard, A. Activated carbons prepared from wood particleboard wastes: Characterisation and phenol adsorption capacities. J. Hazard. Mater. 2009, 166(1), 491–501.
  • Zhou, Q.; Gao, Q.; Luo, W.J.; Yan, C.J.; Ji, Z.N.; Duan, P. One-step synthesis of amino-functionalized attapulgite clay nanoparticles adsorbent by hydrothermal carbonization of chitosan for removal of methylene blue from wastewater. Colloids Surf., A 2015, 470, 248–257.
  • Malik, P.K. Dye removal from wastewater using activated carbon developed from sawdust: Adsorption equilibrium and kinetics. J. Hazard. Mater. 2004, 113(1–3), 81–88.
  • Amin, M.C.I.M.; Ahmad, N.; Halib, N.; Ahmad, I. Synthesis and characterization of thermo- and pH-responsive bacterial cellulose/acrylic acid hydrogels for drug delivery. Carbohydr. Polym. 2012, 88(2), 465–473.
  • Chang, C.Y.; Zhang, L.Z.; Zhou, J.P.; Zhang, L.N.; Kennedy, J.F. Structure and properties of hydrogels prepared from cellulose in NaOH/urea aqueous solutions. Carbohydr. Polym. 2010, 82(1), 122–127.
  • Shanker, G.; Kumar, C.K.; Gonugunta, C.S.R.; Kumar, B.V.; Veerareddy, P.R. Formulation and evaluation of bioadhesive buccal drug delivery of tizanidine hydrochloride tablets. AAPS Pharm Sci. Tech. 2009, 10(2), 530–539.
  • Yan, H.; Zhang, W.X.; Kan, X.W.; Dong, L.; Jiang, Z.W.; Li, H.J.; Yang, H.; Cheng, R.S. Sorption of methylene blue by carboxymethyl cellulose and reuse process in a secondary sorption. Colloids Surf., A 2011, 380(1–3), 143–151.
  • Wang, M.M.; Wang, L. Synthesis and characterization of carboxymethyl cellulose/organic montmorillonite nanocomposites and its adsorption behavior for Congo Red dye. Water Sci. Eng. 2013, 6(3), 272–282.
  • Cai, T.; Yang, Z.; Li, H.J.; Yang, H.; Li, A.; Cheng, R.S. Effect of hydrolysis degree of hydrolyzed polyacrylamide grafted carboxymethyl cellulose on dye removal efficiency. Cellulose 2013, 20(5), 2605–2614.
  • Bajpai, A.K.; Mishra, A. Preparation and characterization of tetracycline-loaded interpenetrating polymer networks of carboxymethyl cellulose and poly(acrylic acid): Water sorption and drug release study. Poly. Int. 2005, 54(10), 1347–1356.
  • Lohani, A.; Singh, G.; Bhattacharya, S.S.; Hegde, R.R.; Verma, A. Tailored-interpenetrating polymer network beads of κ-carrageenan and sodium carboxymethyl cellulose for controlled drug delivery. J. Drug. Del. Sci. Technol. 2016, 31, 53–64.
  • Leonardis, M.; Palange, A.; Dornelles, R.F.V.; Hund, F. Use of cross-linked carboxymethyl cellulose for soft-tissue augmentation: Preliminary clinical studies. Clin. Interv. Aging. 2010, 5(4), 317–322.
  • Bayarri, S.; González-Tomás, L.; Costell, E. Viscoelastic properties of aqueous and milk systems with carboxymethyl cellulose. Food Hydrocoll. 2009, 23(2), 441–450.
  • Zhang, Y.L.; Liu, Y.; Wang, X.R.; Sun, Z.M; Ma, J.K.; Wu, T.; Xing, F.B.; Gao, J.P. Porous graphene oxide/carboxymethyl cellulose monoliths, with high metal ion adsorption. Carbohydr. Polym. 2014, 101, 392–400.
  • Deng, C.; Liu, J.; Zhou, W.; Zhang, Y.K.; Du, K.F.; Zhao, Z.M. Fabrication of spherical cellulose/carbon tubes hybrid adsorbent anchored with welan gum polysaccharide and its potential in adsorbing methylene blue. Chem. Eng. J. 2012, 200–202, 452–458.
  • Chen, C.P.; Gunawan, P.; Xu, R. Self-assembled Fe3O4-layered double hydroxide colloidal nanohybrids with excellent performance for treatment of organic dyes in water. J. Mater. Chem. 2011, 21(4), 1218–1225.
  • Yang, Z.P.; Gong, X.Y.; Zhang, C.J. Recyclable Fe3O4/hydroxyapatite composite nanoparticles for photocatalytic applications. Chem. Eng. J. 2010, 165(1), 117–121.
  • Butun, S.; Ince, F.G.; Erdugan, H.; Sahiner, N. One-step fabrication of biocompatible carboxymethyl cellulose polymeric particles for drug delivery systems. Carbohydr. Polym. 2011, 86(2), 636–643.
  • Elumalai, R.; Patil, S.; Maliyakkal, N.; Rangarajan, A.; Kondaiah, P.; Raichur, A.M. Protamine-carboxymethyl cellulose magnetic nanocapsules for enhanced delivery of anticancer drugs against drug resistant cancers. Nanomed.: Nanotechnol. Biol. Med. 2015, 11(4), 969–981.
  • Luo, X.G.; Liu, S.L.; Zhou, J.P.; Zhang, L.N. In situ synthesis of Fe3O4/cellulose microspheres with magnetic-induced protein delivery. J. Mater. Chem. 2009, 19(21), 3538–3545.
  • Torres-Martínez, N.E.; Garza-Navarro, M.A.; García-Gutiérrez, D.; González-González, V.A.; Torres-Castro, A; Ortiz-Méndez, U. Hybrid nanostructured materials with tunable magnetic characteristics. J. Nanopart. Res. 2014, 16(12), 2759.
  • Massart, R. Preparation of aqueous magnetic liquids in alkaline and acidic media. IEEE Trans. Magn. 1981, 17, 1247–1248.
  • Hemmati, K.; Masoumi, A.; Ghaemy, M. Synthesis and characterization of pH-responsive nanohydrogels as biocompatible drug carriers based on chemically modified tragacanth gum polysaccharide. RSC Adv. 2015, 5(104), 85310–85318.
  • Lei, Y.L.; Lin, D.Q.; Yao, S.J.; Zhu, Z.Q. Preparation and characterization of titanium oxide-densified cellulose beads for expanded bed adsorption. J. Appl. Polym. Sci. 2003, 90(10), 2848–2854.
  • Maccarini, M.; Atrei, A.; Innocenti, C.; Barbucci, R. Interactions at the CMC/magnetite interface: Implications for the stability of aqueous dispersions and the magnetic properties of magnetite nanoparticles. Colloids Surf., A 2014, 462(462), 107–114.
  • Zhang, L.Z.; Zhou, J.P.; Zhang, L.N. Structure and properties of β-cyclodextrin/cellulose hydrogels prepared in NaOH/urea aqueous solution. Carbohydr. Polym. 2013, 94(1), 386–393.
  • Homagai, P.L.; Ghimire, K.N.; Inoue, K. Adsorption behavior of heavy metals onto chemically modified sugarcane bagasse. Bioresour. Technol. 2010, 101(6), 2067–2069.
  • Nakbanpote, W.; Goodman, B.A.; Thiravetyan, P. Copper adsorption on rice husk derived materials studied by EPR and FTIR. Colloids Surf., A. 2007, 304(1–3), 7–13.
  • Yang, S.P.; Fu, S.Y.; Zhou, Y.M.; Xie, C.L.; Li, X.Y. Preparation and release properties of a pH-tunable carboxymethyl cellulose hydrogel/methylene blue host/guest model. Int. J. Polymer. Mater. 2011, 60(1), 62–74.
  • Yamuaraa, M.; Camiloa, R.L.; Smapaiob, L.C.; Macêdoc, M.A.; Nakamaurad, M.; Toma, H.E. Preparation and Characteriaztion of (3-aminoPropyl) triethoxysilane-coated magnetite nanoparticles. J. Magn. Magn. Mater. 2004, 279(2–3), 210–217.
  • Cornell, R.M.; Schwertmann, U. The iron oxide: Structure, properties, reactions, occurrence and uses. Corros. Sci. 1996, 61(408), 740–741.
  • Eiji, T.; Tetsuo, K. Change of morphological properties in drawing water-swollen cellulose films prepared from organic solutions. A view of molecular orientation in the drawing process. J. Poly. Sci., B 1999, 37(37), 451–459.
  • Mohammed, N.; Grishkewich, N.; Waeijen, H.A.; Berry, R.M.; Tam, K.C. Continuous flow adsorption of methylene blue by cellulose nanocrystal-alginate hydrogel beads in fixed bed columns. Carbohydr. Polym. 2016, 136, 1194–1202.
  • Ofomaja, A.E. Sorption dynamics and isotherm studies of methylene blue uptake on to palm kernel fibre. Chem. Eng. J. 2007, 126(1), 35–43.
  • Gong, R.; Jin, Y.; Chen, J.; Hu, Y.; Sun, J. Removal of basic dyes from aqueous solution by sorption on phosphoric acid modified rice straw. Dyes Pigments 2007, 73(3), 332–337.
  • Gosh, D.; Bhattacharya, G. Adsorption of methylene blue on kaolinite. Appl. Clay Sci. 2002, 20(6), 295–300.
  • Karaca, S.; Gürses, A.; Açıkyıldız, M.; Ejder (Korucu), M. Adsorption of cationic dye from aqueous solutions by activated carbon. Microporous Mesoporous Mater. 2008, 115(3), 376–382.
  • Nidheesh, P.V.; Gandhimathi, R.; Ramesh, S.T.; Anantha Singh, T.S. Kinetic analysis of crystal violet adsorption on to bottom ash. Turk. J. Eng. Environ. Sci. 2012, 36(3), 249–262.
  • Tahir, M.A.; Bhatti, H.N.; Iqbal, M. Solar Red and Brittle Blue direct dyes adsorption onto Eucalyptus angophoroides bark: Equilibrium, kinetics and thermodynamic studies. J. Environ. Chem. Eng. 2016, 4(2), 2431–2439.
  • Wang, J.F.; Zhu, H.J.; Hurren, C.; Zhao, J.; Pakdel, E.; Li, Z.Y.; Wang, X.G. Degradation of organic dyes by P25-reduced graphene oxide: Influence of inorganic salts and surfactants. J. Environ. Chem. Eng. 2015, 3(3), 1437–1443.
  • Oakes, J.; Gratton, P.; Gordon-Smith, T. Combined kinetic and spectroscopic study of oxidation of azo dyes in surfactant solutions by hypochlorite. Dyes Pigments 2000, 46(3), 169–180.
  • Özacar, M.; Ayhan Şengil, İ.; Türkmenler, H. Equilibrium and kinetic data, and adsorption mechanism for adsorption of lead onto valonia tannin resin. Chem. Eng. J. 2008, 143(1–3), 32–42.
  • Chang, M.Y.; Juang, R.S. Adsorption of tannic acid, humic acid, and dyes from water using the composite of chitosan and activated clay. J. Colloid Interface Sci. 2004, 278(1), 18–25.
  • Meghea, A.; Rehner, H.H.; Peleanu, I.; Mihalache, R. Test-fitting on adsorption isotherms of organic pollutants from waste waters on activated carbon. J. Radioanal. Nucl. Chem. 1998, 229(1–2), 105–110.
  • Fan, Y.; Liu, H.J.; Zhang, Y.; Chen, Y. Adsorption of anionic MO or cationic MB from MO/MB mixture using polyacrylonitrile fiber hydrothermally treated with hyperbranched polyethylenimine. J. Hazard. Mater. 2015, 283, 321–328.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.