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2023 | 28 | 166-187
Tytuł artykułu

ADSORPTION OF SILVER IONS ON CHITOSAN HYDROGEL BEADS

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EN
Abstrakty
EN
We investigated the adsorption of silver(I) from silver nitrate (AgNO3) and silver sulphate (Ag2SO4). We compared the adsorption ability of chitosan in the form of hydrogel beads with that of chitosan acetate – an initial solution from which the beads were derived. We developed a model of adsorption kinetics, assuming the simultaneous occurrence of the diffusion process and the chemical reaction. We confirmed and described the chemical nature of adsorption based on the Fourier-transform infrared and X-ray photoelectron spectra.
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EN
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Rocznik
Tom
28
Strony
166-187
Opis fizyczny
Twórcy
autor
,,,
  • Tricomed SA, Świętojańska 5/9 Str., 93–493 Łódź, Poland
  • Faculty of Process and Environmental Engineering, Lodz University of Technology, Wolczanska 213 Str., 93–005 Łódź, Poland
  • Faculty of Process and Environmental Engineering, Lodz University of Technology, Wolczanska 213 Str., 93–005 Łódź, Poland, zofia.modrzejewska@p.lodz.pl
  • Faculty of Process and Environmental Engineering, Lodz University of Technology, Wolczanska 213 Str., 93–005 Łódź, Poland
Bibliografia
  • [1] Muzzarelli RAA; (1973) Natural Chelating Polymers. Pergamon, Oxford.
  • [2] Bailey SE, Olin TJ, Bricka RM, Adrian DD; (1999) A review of potentially low-cost sorbents for heavy metals. Wat Res 33, 2469–2479. DOI:10.1016/S0043–1354(98)00475–8
  • [3] Yoshizuka K, Lou Z, Inoue K; (2000) Silver-complexed chitosan microparticles for pesticide removal. React Funct Polym 44, 47–54. DOI:10.1016/S1381–5148(99)00076–0
  • [4] Wu FC, Tseng RL, Juang RS; (2000) Comparative adsorption of metal and dye on flake and bead-types of chitosans prepared from fishery wastes. J Hazard Mater B73, 63–75. DOI:10.1016/s0304–3894(99)00168–5
  • [5] Ying Y, Wang Y, Liu H; (2003) Preparation of new crosslinked chitosan with crown ether and their adsorption silver ion for antibacterial activities. Carbohydr Polym 53, 425–430. DOI:10.1016/S0144–8617(03)00104–8
  • [6] Varma AJ, Deshpande SV, Kennedy JF (2004) Metal complexation by chitosan and its derivatives: a review. Carbohydr Polym 55, 77–93. DOI:10.1016/j.carbpol.2003.08.005
  • [7] Jia YF, Steele CJ, Hayward IP, Thomas KM; (1998) Mechanism of adsorption of gold and silver species on activated carbons. Carbon 36, 1299–1308. DOI:10.1016/S0008–6223(98)00091–8
  • [8] Hidefumi S, Ishikawa J, Koike M, Doi K, Wada H; (2003) Adsorption and concentration of silver ion with polymer-supported polythiazaalkane resins. React Funct Polym 55, 299–310. DOI:10.1016/S1381–5148(03)00021-X
  • [9] Russo T, Fucile P, Giacometti R, Sannino F; (2021) Sustainable removal of contaminants by biopolymers: a novel approach for wastewater treatment. Current state and future perspectives. Processes 9, 719. DOI:10.3390/pr9040719
  • [10] Sumaila AO, Sumaila AS, Abdullahi AS, Usman AO, Ekwoba L; (2022) Application of chitosan-silver nanocomposites for heavy metals removal: a review study. J Mater Environ 13, 869–883.
  • [11] Bhatt P, Joshi S, Urper Bayram GM, Khati P, Simsek H; (2023) Developments and application of chitosan-based adsorbents for wastewater treatment. Environ Res 226, 1115530. DOI:10.1016/j.envres.2023.115530
  • [12] Engidayehu A, Sahu O; (2020) Enzymatic recovery of silver from waste radiographic film: optimize with response surface methodology. Sustain Chem Pharm 15, 100224. DOI:10.1016/j.scp.2020.100224
  • [13] Modrzejewska Z, Dorabialska M, Zarzycki R, Wojtasz-Pająk A; (2009) The mechanism of sorption of Ag+ ions on chitosan microgranules: IR and NMR studies. Prog Chem Appl Chitin Deriv XIV, 49–64.
  • [14] Modrzejewska Z, Biniaś D, Wojtasz-Pająk A, Dorabialska M, Zarzycki R; (2008) Crystalline structure of chitosan microgranules cross-linked with Cu2+ and Ag+ ions. Cryst Growth Des 8, 4372–4377. DOI:10.1021/cg700906y
  • [15] Chen J, Fan L, Yang C, Wang S, Zhang M, Xu J, Luo S; (2020) Facile synthesis of Ag nanoparticles-loaded chitosan antibacterial nanocomposite and its application in polypropylene. Int J Biol Macromol 161, 1286–1295. DOI:10.1016/j.ijbiomac.2020.07.151
  • [16] Hajji S, Khedir SB, Hamza-Mnif I, Hamdi M, Jedidi I, Kallel R, Boufi S, Nasri M; (2019) Biomedical potential of chitosan-silver nanoparticles with special reference to antioxidant, antibacterial, hemolytic and in vivo cutaneous wound healing effects. Biochim Biophys Acta Gen Subj 1863, 241–254. DOI:10.1016/j.bbagen.2018.10.010
  • [17] Regiel-Futyra A, Kus-Liśkiewicz M, Sebastian V, Irusta S, Arruebo M, Kyzioł A, Stochel G; (2017) Development of noncytotoxic silver–chitosan nanocomposites for efficient control of biofilm forming microbes, RSC Adv 7, 52398–52413. DOI:10.1039/c7ra08359a
  • [18] Latańska I, Rosiak P, Paul P, Sujka W, Kolesińska B; (2023) Modulating the physicochemical properties of chitin and chitosan as a method of obtaining new biological properties of biodegradable materials. In: Chitin and Chitosan – Physicochemical Properties and Industrial Applications. IntechOpen, London. DOI:10.5772/intechopen.95815
  • [19] Latańska I, Kolesińska B, Draczyński Z, Sujka W; (2020) The use of chitin and chitosan in manufacturing dressing materials. Prog Chem Appl Chitin Deriv XXV, 260–272. DOI:10.15259/PCACD.25.00
  • [20] Paul P, Kolesińska B, Sujka W; (2019) Chitosan and its derivatives – biomaterials with diverse biological activity for manifold applications. Mini Rev Med Chem 19, 737–750. DOI:10.2174/1389557519666190112142735
  • [21] Modrzejewska Z, Rogacki G, Sujka W, Zarzycki R; (2016) Sorption of copper by chitosan hydrogel: Kinetics and equilibrium. Chem Eng Process Intensif 109, 104–113. DOI:10.1016/j.cep.2016.08.014
  • [22] Braier NC, Jishi RA; (2000) Density functional studies of Cu2+ and Ni2+ binding to chitosan. J Mol Struct 1–3, 51–55. DOI:10.1016/S0166–1280(99)00288–2
Typ dokumentu
article
Bibliografia
Identyfikatory
Identyfikator YADDA
bwmeta1.element.psjd-bee50c3a-785a-44d7-842c-aae78fe6d1c5
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