1,466
Views
1
CrossRef citations to date
0
Altmetric
Research Article

Porous polyurethane hydrogels incorporated with CMC for eliminating methylene blue from water

ORCID Icon, , , & ORCID Icon
Pages 57-76 | Received 12 Jul 2022, Accepted 01 Dec 2022, Published online: 01 Jan 2023

References

  • Bennett GF, Environmental chemistry of dyes and pigments: A. Reife and H.S. Freeman (Eds.), Wiley, New York, NY, 1995, $99.00, 329, J Hazard Mater 54(1) (1997) 124. Proceedings of the nineteenth Arctic and marine oil spill program (AMOP) technical seminar, Calgary, Alberta, Canada
  • Qin Y, Wang L, Zhao C, et al. Ammonium-functionalized hollow polymer particles as a pH-responsive adsorbent for selective removal of acid dye. ACS Appl Mater Interfaces. 2016;8(26):16690–16698.
  • Qamar M, Saquib M, Muneer M. Semiconductor-mediated photocatalytic degradation of anazo dye, chrysoidine Y in aqueous suspensions. Desalination. 2005;171(2):185–193.
  • Tkaczyk A, Mitrowska K, Posyniak A. Synthetic organic dyes as contaminants of the aquatic environment and their implications for ecosystems: a review. SciTotal Environ. 2020;717:137222.
  • Duman O, Tunç S, Polat TG, et al. Synthesis of magnetic oxidized multiwalled carbon nanotube-κ-carrageenan-Fe3O4 nanocomposite adsorbent and its application in cationic methylene blue dye adsorption. Carbohydr Polym. 2016;147:79–88.
  • Abdel-Halim ES, Al-Deyab SS. Removal of heavy metals from their aqueous solutions through adsorption onto natural polymers. Carbohydr Polym. 2011;84(1):454–458.
  • Doke SM, Yadav GD. Novelties of combustion synthesized titania ultrafiltration membrane in efficient removal of methylene blue dye from aqueous effluent. Chemosphere. 2014;117:760–765.
  • Chafi M, Gourich B, Essadki AH, et al. Comparison of electrocoagulation using iron and aluminium electrodes with chemical coagulation for the removal of a highly soluble acid dye. Desalination. 2011;281:285–292.
  • Fan L, Luo C, Li X, et al. Fabrication of novel magnetic chitosan grafted with graphene oxide to enhance adsorption properties for methyl blue. Journal of Hazardous Materials 215-216. 2012;215-216:272–279.
  • Svetozarević M, Šekuljica N, Onjia A, et al. Biodegradation of synthetic dyes by free and cross-linked peroxidase in microfluidic reactor. Environ Technol Innovation. 2022;26:102373.
  • Senthil Rathi B, Senthil Kumar P. Sustainable approach on the biodegradation of azo dyes: a short review. Current Opin Green Sustainable Chem. 2022;33:100578.
  • Zaidi SZJ, Harito C, Bavykin DV, et al. Photocatalytic degradation of methylene blue dye on reticulated vitreous carbon decorated with electrophoretically deposited TiO2 nanotubes. Diam Relat Mater. 2020;109:108001.
  • Bangari RS, Yadav A, Bharadwaj J, et al. Boron nitride nanosheets incorporated polyvinylidene fluoride mixed matrix membranes for removal of methylene blue from aqueous stream. J Environ Chem Eng. 2022;10(1):107052.
  • Hien Tran T, Le AH, Pham TH, et al. A sustainable, low-cost carbonaceous hydrochar adsorbent for methylene blue adsorption derived from corncobs. Environ Res. 2022;212:113178.
  • Karthi S, Sangeetha RK, Arumugam K, et al., Removal of methylene blue dye using shrimp shell chitin from industrial effluents, Materials Today: Proceedings Moodbdri, Karnataka, India, (2022). 10.1016/j.matpr.2022.05.428.
  • Duman O, Ayranci E. Adsorption characteristics of benzaldehyde, sulphanilic acid, and p‐phenolsulfonate from water, acid, or base solutions onto activated carbon cloth. Sep Sci Technol. 2006;41(16):3673–3692.
  • Cao X, Liu M, Bi W, et al. Direct carboxylation of cellulose in deep eutectic solvent and its adsorption behavior of methylene blue. Carbohydrate Polymer Technologies and Applications. 2022;4:100222.
  • Mahmoud ME, El-Bahy SM, Elweshahy SMT. Decorated Mn-ferrite nanoparticle@Zn–Al layered double hydroxide@cellulose@ activated biochar nanocomposite for efficient remediation of methylene blue and mercury (II. Bioresour Technol. 2021;342:126029.
  • Jawad AH, Saud Abdulhameed A, Wilson LD, et al. High surface area and mesoporous activated carbon from KOH-activated dragon fruit peels for methylene blue dye adsorption. Optimization and Mechanism Study, Chinese Journal of Chemical Engineering. 2021;32:281–290.
  • Abdulhameed AS, Firdaus Hum NNM, Rangabhashiyam S, et al. Statistical modeling and mechanistic pathway for methylene blue dye removal by high surface area and mesoporous grass-based activated carbon using K2CO3 activator. J Environ Chem Eng. 2021;9(4):105530.
  • Mondal A, Arora M, Kumar Dubey B, et al. Comparative assessment of the characteristics and Cr(VI) removal activity of the bimetallic Fe/Cu nanoparticles pre- and post-coated with carboxymethyl cellulose. Chem Eng J. 2022;444:136343.
  • He X, Jia H, Sun N, et al. Fluorescent hydrogels based on oxidized carboxymethyl cellulose with excellent adsorption and sensing abilities for Ag+. Int J Biol Macromol. 2022;213:955–966.
  • Xu D, Kong Q, Wang X, et al. Preparation of carboxymethyl cellulose/chitosan-CuO giant vesicles for the adsorption and catalytic degradation of dyes. Carbohydr Polym. 2022;291:119630.
  • Zhao H, Liang Z-X, Gao -Z-Z. Facile preparation of floatable carboxymethyl cellulose-based composite hydrogel for efficient removal of organic dyes. Colloid Interface Sci Commun. 2022;49:100637.
  • Chen Y, Long Y, Li Q, et al. Synthesis of high-performance sodium carboxymethyl cellulose-based adsorbent for effective removal of methylene blue and Pb (II. Int J Biol Macromol. 2019;126:107–117.
  • Liu H, Tian X, Xiang X, et al. Preparation of carboxymethyl cellulose/graphene composite aerogel beads and their adsorption for methylene blue. Int J Biol Macromol. 2022;202:632–643.
  • Eltaweil AS, Elgarhy GS, El-Subruiti GM, et al. Carboxymethyl cellulose/carboxylated graphene oxide composite microbeads for efficient adsorption of cationic methylene blue dye. Int J Biol Macromol. 2020;154:307–318.
  • Sirajudheen P, Nikitha MR, Karthikeyan P, et al. Perceptive removal of toxic azo dyes from water using magnetic Fe3O4 reinforced graphene oxide–carboxymethyl cellulose recyclable composite: adsorption investigation of parametric studies and their mechanisms. Surf Interfaces. 2020;21:100648.
  • Hong H-J, Lim JS, Hwang JY, et al. Carboxymethlyated cellulose nanofibrils(CMCNFs) embedded in polyurethane foam as a modular adsorbent of heavy metal ions. Carbohydr Polym. 2018;195:136–142.
  • Selvasembian R, Gwenzi W, Chaukura N, et al. Recent advances in the polyurethane-based adsorbents for the decontamination of hazardous wastewater pollutants. J Hazard Mater. 2021;417:125960.
  • Pongmuksuwan P, Harnnarongchai W, Katabunyanont S. Influence of temperature, time and crosslinking agent on structure and properties of polyurethane gel. Key Eng Mater. 2020;856:253–260.
  • Mashkoor F, Nasar A. Preparation, characterization and adsorption studies of the chemically modified Luffa aegyptiaca peel as a potential adsorbent for the removal of malachite green from aqueous solution. J Mol Liq. 2019;274:315–327.
  • Ho YS, McKay G. A comparison of chemisorption kinetic models applied to pollutant removal on various sorbents. Process SafEnviron Prot. 1998;76(4):332–340.
  • Ho YS, McKay G. Pseudo-second order model for sorption processes. Process Biochem. 1999;34(5):451–465.
  • Ye X, Wu L, Zhu M, et al. Lotus pollen-derived hierarchically porous carbons with exceptional adsorption performance toward reactive black 5: isotherms, kinetics and thermodynamics investigations. Sep Purif Technol. 2022;300:121899.
  • He Z, Qin M, Han C, et al. Pectin/graphene oxide aerogel with bamboo-like structure for enhanced dyes adsorption. Colloids Surf A Physicochem Eng Asp. 2022;652:129837.
  • Fan X, Deng L, Li K, et al. Adsorption of malachite green in aqueous solution using sugarcane bagasse-barium carbonate composite. Colloid Interface Sci Commun. 2021;44:100485.
  • Tran HN, Lima EC, Juang R-S, et al. Thermodynamic parameters of liquid–phase adsorption process calculated from different equilibrium constants related to adsorption isotherms: a comparison study. J Environ Chem Eng. 2021;9(6):106674.
  • Anju M, Renuka NK. Magnetically actuated graphene coated polyurethane foam as potential sorbent for oils and organics. Arabian J Chem. 2020;13(1):1752–1762.
  • Rivera-Armenta JL, Heinze T, Mendoza-Martínez AM. New polyurethane foams modified with cellulose derivatives. Eur Polym J. 2004;40(12):2803–2812.
  • Justi M, de Freitas MP, Silla JM, et al. Molecular structure features and fast identification of chemical properties of metal carboxylate complexes by FTIR and partial least square regression. J Mol Struct. 2021;1237:130405.
  • Hu XS, Liang R, Sun GX. Super-adsorbent hydrogel for removal of methylene blue dye from aqueous solution. ?J Mater Chem A. 2018;6(36):17612–17624.
  • Zhao J, Huang Q, Liu M, et al. Synthesis of functionalized MgAl-layered double hydroxides via modified mussel inspired chemistry and their application in organic dye adsorption. J Colloid Interface Sci. 2017;505:168–177.
  • Liu M, Chen C, Hu J, et al. Synthesis of magnetite/graphene oxide composite and application for cobalt(II) removal. J Phys Chem C. 2011;115(51):25234–25240.
  • McCafferty E. Relationship between the isoelectric point (pHpzc) and the potential of zero charge (Epzc) for passive metals. Electrochim Acta. 2010;55(5):1630–1637.
  • Ren L, Tang Z, Du J, et al. Recyclable polyurethane foam loaded with carboxymethyl chitosan for adsorption of methylene blue. J Hazard Mater. 2021;417:126130.
  • Duman O, Ayranci E. Adsorptive removal of cationic surfactants from aqueous solutions onto high-area activated carbon cloth monitored by in situ UV spectroscopy. J Hazard Mater. 2010;174(1):359–367.
  • Ayranci E, Duman O. Structural effects on the interactions of benzene and naphthalene sulfonates with activated carbon cloth during adsorption from aqueous solutions. Chem Eng J. 2010;156(1):70–76.
  • Duman O, Tunç S, Polat TG. Determination of adsorptive properties of expanded vermiculite for the removal of C. I. Basic Red 9 from aqueous solution: kinetic, isotherm and thermodynamic studies. Appl Clay Sci. 2015;109-110:22–32. 109-110.
  • Wei X, Chen D, Wang L, et al. Carboxylate-functionalized hollow polymer particles modified polyurethane foam for facile and selective removal of cationic dye. Appl Surf Sci. 2022;579:152153.
  • Duman O, Polat TG, Diker CÖ, et al. Agar/κ-carrageenan composite hydrogel adsorbent for the removal of methylene blue from water. Int J Biol Macromol. 2020;160:823–835.
  • Duman O, Tunç S, Bozoğlan BK, et al. Removal of triphenylmethane and reactive azo dyes from aqueous solution by magnetic carbon nanotube-κ-carrageenan-Fe3O4 nanocomposite. J Alloys Compd. 2016;687:370–383.
  • Li K, Zheng Z, Li Y. Characterization and lead adsorption properties of activated carbons prepared from cotton stalk by one-step H3PO4 activation. J Hazard Mater. 2010;181(1):440–447.
  • Tang S, Yang J, Lin L, et al. Construction of physically crosslinked chitosan/sodium alginate/calcium ion double-network hydrogel and its application to heavy metal ions removal. Chem Eng J. 2020;393:124728.
  • Long W, Yang C, Wang G, et al. Effective adsorption of Hg(II) ions by new ethylene mimine polymer/β-cyclodextrin crosslinked functionalized magnetic composite. Arabian J Chem. 2022;104439. 10.1016/j.arabjc.2022.104439
  • Deng S-Q, Miao Y-L, Tan Y-L, et al. An anionic nanotubular metal–organic framework for high-capacity dye adsorption and dye degradation in darkness. Inorg Chem. 2019;58(20):13979–13987.
  • Wang Y, Wang S, Li Z, et al. Synthesis of UiO-66 in Supercritical CO2 and its application in dye adsorption. Ind Eng Chem Res. 2021;60(1):771–780.
  • He Q, Liu X, Wang Y, et al. Circular conversion of waste rectorite@dye to efficient and pH-resistant heterogeneous silicate adsorbents for cyclic and complete dye removal. Appl Clay Sci. 2022;225:106556.
  • Albadarin AB, Collins MN, Naushad M, et al. Activated lignin-chitosan extruded blends for efficient adsorption of methylene blue. Chem Eng J. 2017;307:264–272.
  • Chen H, Zhao J, Zhong A, et al. Removal capacity and adsorption mechanism of heat-treated palygorskite clay for methylene blue. Chem Eng J. 2011;174(1):143–150.
  • Ngulube T, Gumbo JR, Masindi V, et al. Preparation and characterisation of high performing magnesite-halloysite nanocomposite and its application in the removal of methylene blue dye. J Mol Struct. 2019;1184:389–399.
  • Janbooranapinij K, Yimponpipatpol A, Ngamthanacom N, et al. Conversion of industrial carpet waste into adsorbent materials for organic dye removal from water. Cleaner Engineering and Technology. 2021;4:100150.
  • Wang S, Ma Q, Zhu ZH. Characteristics of coal fly ash and adsorption application. Fuel. 2008;87(15):3469–3473.
  • Wang R-F, Deng L-G, Li K, et al. Fabrication and characterization of sugarcane bagasse–calcium carbonate composite for the efficient removal of crystal violet dye from wastewater. Ceram Int. 2020;46(17):27484–27492.