Page 641 - Polymer-based Nanocomposites for Energy and Environmental Applications
P. 641

592                Polymer-based Nanocomposites for Energy and Environmental Applications

         [16] Olatunji MA, Khandaker MU, Amin YM, Mahmud HNME. Ibrahim F, Usman J,
             Mohktar MS, Ahmad MY, editors. Development and characterization of polypyrrole-
             based nanocomposite adsorbent and its applications in removal of radioactive materials.
             International conference for innovation in biomedical engineering and life sciences; 2016.
             p. 30–5.
         [17] Schadler LS. Polymer-based and polymer-filled nanocomposites. In: Ajayan PM,
             Schadler LS, Braun PV, editors. Nanocomposite science and technology. Weinheim:
             WILEY-VCH Verlag GmbH & Co KGaA; 2003.
         [18] Singh NB, Agarwal S. Nanocomposites—an overview. Emerg Mater Res 2016;5(1):5–43.
         [19] Fawaz J, Mittal V. Synthesis of polymer nanocomposites: review of various techniques.
             In: Mittal V, editor. Synthesis techniques for polymer nanocomposites. 1st ed. Weinheim:
             Wiley-VCH; 2015.
         [20] Lofrano G, Carotenuto M, Libralato G, Domingos RF, Markus A, Dini L, et al. Polymer
             functionalized nanocomposites for metals removal from water and wastewater: an over-
             view. Water Res 2016;92:22–37.
         [21] Ray SS, Okamoto M. Polymer/layered silicate nanocomposites: a review from preparation
             to processing. Prog Polym Sci 2003;28(11):1539–641.
         [22] Jhaveri JH, Murthy ZVP. A comprehensive review on anti-fouling nanocomposite mem-
             branes  for  pressure  driven  membrane  separation  processes.  Desalination
             2016;379:137–54.
         [23] Ray SS, Okamoto K, Okamoto M. Structure-property relationship in biodegradable
             poly(butylenes  succinate)/layered  silicate  nanocomposites.  Macromolecules
             2003;36(7):2355–67.
         [24] Yin J, Deng B. Polymer-matrix nanocomposite membranes for water treatment. J Memb
             Sci 2015;479:256–75.
         [25] Worch E. Adsorption technology in water treatment: fundamentals, processes, and model-
             ing. Berlin/Boston: de Gruyter; 2012.
         [26] Unuabonah EI, Taubert A. Clay-polymer nanocomposites (CPNs): adsorbents of the
             future for water treatment. Appl Clay Sci 2014;99:83–92.
         [27] Khin MM, Nair AS, Babu VJ, Murugan R, Ramakrishna SA. Review on nanomaterials for
             environmental remediation. Energy Environ Sci 2012;5:8075–109.
         [28] Allen SJ, Mckay G, Porter JF. Adsorption isotherm models for basic dye adsorption by
             peat in single and binary component systems. J Colloid Interface Sci 2004;280(2):322–33.
         [29] Bulut E, Ozacar M, Sengil IA. Adsorption of malachite green onto bentonite: equilibrium
             and kinetic studies and process design. Micropor Mesopor Mater 2008;115(3):234–46.
         [30] Foo KY, Hameed BH. Insights into the modeling of adsorption isotherm systems. Chem
             Eng J 2010;156(1):2–10.
                ¸
             ¸
         [31] Ciftci TD, Henden E. Nickel/nickel boride nanoparticles coated resin: a novel adsorbent
             forarsenic(III) and arsenic(V) removal. Powder Technol 2015;269:470–80.
         [32] Chien SH, Clayton WR. Application of Elovich equation to the kinetics of phosphate
             release and sorption in soil. Soil Sci Soc Am J 1979;44:265–8.
         [33] Weber WJ, Morris JC. Kinetics of adsorption on carbon from solution. J Sanit Eng Div
             ASCE 1963;89(2):31–60.
         [34] Okewale AO, Babayemi KA, Olalekan AP. Adsorption isotherms and kinetics models of
             starchy adsorbents on uptake of water from ethanol-water systems. Int J Appl Sci Technol
             2013;3:35–42.
         [35] Malana MA, Qureshi RB, Ashiq MN. Adsorption studies of arsenic on nano aluminium
             doped manganese copper ferrite polymer (MA, VA, AA) composite: kinetics and mech-
             anism. Chem Eng J 2011;172(2–3):721–7.
   636   637   638   639   640   641   642   643   644   645   646