Full-text resources of PSJD and other databases are now available in the new Library of Science.
Visit https://bibliotekanauki.pl

PL EN


Preferences help
enabled [disable] Abstract
Number of results
2023 | 28 | 14-25

Article title

REUSABILITY OF CHITOSAN AND SAWDUST-MODIFIED CHITOSAN FOR ADSORPTION/DESORPTION OF ANIONIC AND CATIONIC DYES

Content

Title variants

Languages of publication

EN

Abstracts

EN
We explored the multiple uses of chitosan in the form of beads and beech sawdust immobilised in chitosan to remove anionic (Reactive Yellow 85 and Reactive Blue 5) and cationic (Basic Violet 10 and Basic Green 4) dyes. For both anionic dyes, with the next adsorption/desorption cycle, the amount of dye accumulated in the adsorbent increased, which resulted in a decrease in the desorption efficiency. The number of possible adsorption/desorption cycles was regulated by the occupation of all active sites. We observed the opposite trend for the cationic dyes: the charge accumulated in the adsorbent after both adsorption and desorption decreased with subsequent cycles. Despite the low accumulated charge compared with the total adsorption capacity of the adsorbents, it was impossible to further adsorb and desorb the dye. The results demonstrated that for both adsorbents tested, it was possible to carry out 6–7 adsorption/desorption cycles, but the desorption efficiency decreased with each cycle.

Year

Volume

28

Pages

14-25

Physical description

Contributors

  • Department of Environmental Engineering, University of Warmia and Mazury in Olsztyn, Warszawska 117 Str., 10–720 Olsztyn, Poland
  • Department of Environmental Engineering, University of Warmia and Mazury in Olsztyn, Warszawska 117 Str., 10–720 Olsztyn, Poland

References

  • [1] Azanaw A, Birlie B, Teshome B, Jemberie M; (2022) Textile effluent treatment methods and eco-friendly resolution of textile wastewater. Case study. Chem Environ Eng 6, 100230. DOI:10.1016/J.CSCEE.2022.100230
  • [2] Chakraborty R, Ahmad F; (2022) Economical use of water in cotton knit dyeing industries of Bangladesh. J Clean Prod 340, 130825. DOI:10.1016/J.JCLEPRO.2022.130825
  • [3] Bisschops I, Spanjers H; (2003) Literature review on textile wastewater characterisation. Environ Techno 24, 1399–1411. DOI:10.1080/09593330309385684
  • [4] Kant R; (2012) Textile dyeing industry an environmental hazard. Nat Sci 4, 22–26. DOI:10.4236/NS.2012.41004
  • [5] Al-Tohamy R, Ali SS, Li F, Okasha KM, Mahmoud YAG, Elsamahy T, Jiao H, Fu Y, Sun J; (2022) A critical review on the treatment of dye-containing wastewater: ecotoxicological and health concerns of textile dyes and possible remediation approaches for environmental safety. Ecotoxicol Environ Saf 231, 113160. DOI:10.1016/J.ECOENV.2021.113160
  • [6] Ihaddaden S, Aberkane D, Boukerroui A, Robert D; (2022) Removal of methylene blue (basic dye) by coagulation-flocculation with biomaterials (Bentonite and Opuntia Ficus Indica). J Water Process Eng 49, 102952. DOI:10.1016/J.JWPE.2022.102952
  • [7] Mólgora CC, Domínguez AM, Avila EM, Drogui P, Buelna G; (2013) Removal of Arsenic from Drinking Water: A Comparative Study between Electrocoagulation-Microfiltration and Chemical Coagulation-Microfiltration Processes. Sep Purif Technol 118, 645–651. DOI:10.1016/J.SEPPUR.2013.08.011
  • [8] Filipkowska U, Rodziewicz J, Moczkowska I; (2010) Basic Violet 10 dye removal from water solutions onto zeolite. Rocz Ochr Sr 12(1), 747–760
  • [9] Thanavel M, Bankole PO, Selvam R, Govindwar SP, Sadasivam SK; (2020) Synergistic effect of biological and advanced oxidation process treatment in the biodegradation of Remazol Yellow RR dye. Sci Rep 10, 1–9. DOI:10.1038/s41598–020–77376–5
  • [10] Abrile MG, Fiasconaro ML, Lovato ME; Optimization of Reactive Blue 19 dye removal using ozone and ozone/UV employing response surface methodology. App Sci 2(5), 995. DOI:10.1007/s42452–020–2824-y
  • [11] Wen H, Huang W, Liu C; (2022) Double-barrier forward osmosis membrane for rejection and destruction of bacteria and removal of dyes. Desalination 529, 115609. DOI:10.1016/J.DESAL.2022.115609
  • [12] Xiang J, Wang X, Ding M, Tang X, Zhang S, Zhang X, Xie Z; (2022) The role of lateral size of MXene nanosheets in membrane filtration of dyeing wastewater: membrane characteristic and performance. Chemosphere 294, 133728. DOI:10.1016/J.CHEMOSPHERE.2022.133728
  • [13] Harja M; Buema G; Bucur D; (2022) Recent advances in removal of Congo Red dye by adsorption using an industrial waste. Sci Rep 12(1), 6087. DOI:10.1038/s41598–022–10093–3
  • [14] Chikri R, Elhadiri N, Benchanaa M, El Maguana Y; (2020) Efficiency of sawdust as low-cost adsorbent for dyes removal. J Chem 2020, 8813420. DOI:10.1155/2020/8813420
  • [15] Garg VK, Gupta R, Yadav AB, Kumar R; (2003) Dye removal from aqueous solution by adsorption on treated sawdust. Bioresour Technol 89, 121–124. DOI:10.1016/S0960–8524(03)00058–0
  • [16] Gupta VK, Suhas; (2009) Application of low-cost adsorbents for dye removal - a review. J Environ Manage 90, 2313–2342. DOI:10.1016/j.jenvman.2008.11.017
  • [17] Mahanti CLVV, Laxmi GS; (2014) Removal of dyes by using low cost adsorbents agricultural wastes and sand. Int J Eng Res Technol 3, 1749–1762
  • [18] Garg VK, Amita M, Kumar R, Gupta R; (2004) Basic dye (methylene blue) removal from simulated wastewater by adsorption using Indian rosewood sawdust: a timber industry waste. Dye Pigment 63, 243–250. DOI:10.1016/J.DYEPIG.2004.03.005
  • [19] Tissera ND, Wijesena RN, Yasasri H, de Silva KMN, de Silva RM; (2020) Fibrous keratin protein bio micro structure for efficient removal of hazardous dye waste from water: surface charge mediated interfaces for multiple adsorption desorption cycles. Mater Chem Phys 246, 122790. DOI:10.1016/j.matchemphys.2020.122790
  • [20] Chiou MS, Li HY; (2003) Adsorption behavior of reactive dye in aqueous solution on chemical cross-linked chitosan beads. Chemosphere 50, 1095–1105. DOI:10.1016/S0045–6535(02)00636–7
  • [21] Kyzas GZ, Lazaridis NK; (2009) Reactive and basic dyes removal by sorption onto chitosan derivatives. J Coll Interf Sci 331, 32–39. DOI:10.1016/J.JCIS.2008.11.003
  • [22] Zhou L, Jin J, Liu Z, Liang X, Shang C; (2011) Adsorption of acid dyes from aqueous solutions by the ethylenediamine-modified magnetic chitosan nanoparticles. J Hazard Mater 185, 1045–1052. DOI:10.1016/J.JHAZMAT.2010.10.012
  • [23] Zhao X, Wang X, Lou T; (2022) Simultaneous adsorption for cationic and anionic dyes using chitosan/electrospun sodium alginate nanofiber composite sponges. Carbohydr Polym 276, 118728. DOI:10.1016/J.CARBPOL.2021.118728
  • [24] Wan X, Rong Z, Zhu K, Wu Y; (2022) Chitosan-based dual network composite hydrogel for efficient adsorption of methylene blue dye. Int J Biol Macromol 222, 725–735. DOI:10.1016/j.ijbiomac.2022.09.213

Document Type

article

Publication order reference

Identifiers

YADDA identifier

bwmeta1.element.psjd-ebcdcd0d-c254-4fdf-8b5b-02b7c5f7df54
JavaScript is turned off in your web browser. Turn it on to take full advantage of this site, then refresh the page.