Cargando…

Chitosan Deposited onto Fumed Silica Surface as Sustainable Hybrid Biosorbent for Acid Orange 8 Dye Capture: Effect of Temperature in Adsorption Equilibrium and Kinetics

[Image: see text] Chitosan was deposited on fumed silica without the addition of cross-linkers or activating agents. The chitosan surface layer has a high affinity toward organic molecules, e.g., Acid Orange 8 (AO8) dye, robust to a broad range of simulated conditions (variance with respect to tempe...

Descripción completa

Detalles Bibliográficos
Autores principales: Budnyak, Tetyana M., Błachnio, Magdalena, Slabon, Adam, Jaworski, Aleksander, Tertykh, Valentin A., Deryło-Marczewska, Anna, Marczewski, Adam W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7493206/
https://www.ncbi.nlm.nih.gov/pubmed/32952774
http://dx.doi.org/10.1021/acs.jpcc.0c04205
_version_ 1783582518505635840
author Budnyak, Tetyana M.
Błachnio, Magdalena
Slabon, Adam
Jaworski, Aleksander
Tertykh, Valentin A.
Deryło-Marczewska, Anna
Marczewski, Adam W.
author_facet Budnyak, Tetyana M.
Błachnio, Magdalena
Slabon, Adam
Jaworski, Aleksander
Tertykh, Valentin A.
Deryło-Marczewska, Anna
Marczewski, Adam W.
author_sort Budnyak, Tetyana M.
collection PubMed
description [Image: see text] Chitosan was deposited on fumed silica without the addition of cross-linkers or activating agents. The chitosan surface layer has a high affinity toward organic molecules, e.g., Acid Orange 8 (AO8) dye, robust to a broad range of simulated conditions (variance with respect to temperature, time, and concentration of solute). Experimental equilibrium data were analyzed by the generalized Langmuir equation taking into consideration the energetic heterogeneity of the adsorption system. The effect of temperature on dye uptake and adsorption rate was studied. According to the calculated thermodynamic functions ΔG°, ΔH°, and ΔS° from the equilibrium data at different temperatures, the adsorption of AO8 onto chitosan–fumed silica composite is exothermic and spontaneous. The studies of temperature effect on adsorption equilibrium show that the maximum adsorption capacity (determined from the Langmuir–Freundlich equation) of synthesized composite toward AO8 is about one-third higher in the case of an isotherm measured at 5 °C than this value obtained for the isotherm measured at 45 °C. The quantitative binding of dye molecules to chitosan coating on the surface of silica was proved by (1)H MAS NMR. The deep kinetics study through the application of various theoretical models—the first-order equation, pseudo-first-order equation, second-order equation, pseudo-second-order equation, mixed first, second-order equation, and multiexponential equation—was applied for getting inside the mechanism of AO8 binding to the chitosan coating. Structural characteristics of chitosan-coated silica were obtained from the low-temperature adsorption/desorption isotherms of nitrogen and imaging by scanning electron microscopy. The effects of a synthetic route for polymer coating on thermal stability and the ability to degrade were studied by differential scanning calorimetry.
format Online
Article
Text
id pubmed-7493206
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-74932062020-09-16 Chitosan Deposited onto Fumed Silica Surface as Sustainable Hybrid Biosorbent for Acid Orange 8 Dye Capture: Effect of Temperature in Adsorption Equilibrium and Kinetics Budnyak, Tetyana M. Błachnio, Magdalena Slabon, Adam Jaworski, Aleksander Tertykh, Valentin A. Deryło-Marczewska, Anna Marczewski, Adam W. J Phys Chem C Nanomater Interfaces [Image: see text] Chitosan was deposited on fumed silica without the addition of cross-linkers or activating agents. The chitosan surface layer has a high affinity toward organic molecules, e.g., Acid Orange 8 (AO8) dye, robust to a broad range of simulated conditions (variance with respect to temperature, time, and concentration of solute). Experimental equilibrium data were analyzed by the generalized Langmuir equation taking into consideration the energetic heterogeneity of the adsorption system. The effect of temperature on dye uptake and adsorption rate was studied. According to the calculated thermodynamic functions ΔG°, ΔH°, and ΔS° from the equilibrium data at different temperatures, the adsorption of AO8 onto chitosan–fumed silica composite is exothermic and spontaneous. The studies of temperature effect on adsorption equilibrium show that the maximum adsorption capacity (determined from the Langmuir–Freundlich equation) of synthesized composite toward AO8 is about one-third higher in the case of an isotherm measured at 5 °C than this value obtained for the isotherm measured at 45 °C. The quantitative binding of dye molecules to chitosan coating on the surface of silica was proved by (1)H MAS NMR. The deep kinetics study through the application of various theoretical models—the first-order equation, pseudo-first-order equation, second-order equation, pseudo-second-order equation, mixed first, second-order equation, and multiexponential equation—was applied for getting inside the mechanism of AO8 binding to the chitosan coating. Structural characteristics of chitosan-coated silica were obtained from the low-temperature adsorption/desorption isotherms of nitrogen and imaging by scanning electron microscopy. The effects of a synthetic route for polymer coating on thermal stability and the ability to degrade were studied by differential scanning calorimetry. American Chemical Society 2020-06-16 2020-07-16 /pmc/articles/PMC7493206/ /pubmed/32952774 http://dx.doi.org/10.1021/acs.jpcc.0c04205 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Budnyak, Tetyana M.
Błachnio, Magdalena
Slabon, Adam
Jaworski, Aleksander
Tertykh, Valentin A.
Deryło-Marczewska, Anna
Marczewski, Adam W.
Chitosan Deposited onto Fumed Silica Surface as Sustainable Hybrid Biosorbent for Acid Orange 8 Dye Capture: Effect of Temperature in Adsorption Equilibrium and Kinetics
title Chitosan Deposited onto Fumed Silica Surface as Sustainable Hybrid Biosorbent for Acid Orange 8 Dye Capture: Effect of Temperature in Adsorption Equilibrium and Kinetics
title_full Chitosan Deposited onto Fumed Silica Surface as Sustainable Hybrid Biosorbent for Acid Orange 8 Dye Capture: Effect of Temperature in Adsorption Equilibrium and Kinetics
title_fullStr Chitosan Deposited onto Fumed Silica Surface as Sustainable Hybrid Biosorbent for Acid Orange 8 Dye Capture: Effect of Temperature in Adsorption Equilibrium and Kinetics
title_full_unstemmed Chitosan Deposited onto Fumed Silica Surface as Sustainable Hybrid Biosorbent for Acid Orange 8 Dye Capture: Effect of Temperature in Adsorption Equilibrium and Kinetics
title_short Chitosan Deposited onto Fumed Silica Surface as Sustainable Hybrid Biosorbent for Acid Orange 8 Dye Capture: Effect of Temperature in Adsorption Equilibrium and Kinetics
title_sort chitosan deposited onto fumed silica surface as sustainable hybrid biosorbent for acid orange 8 dye capture: effect of temperature in adsorption equilibrium and kinetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7493206/
https://www.ncbi.nlm.nih.gov/pubmed/32952774
http://dx.doi.org/10.1021/acs.jpcc.0c04205
work_keys_str_mv AT budnyaktetyanam chitosandepositedontofumedsilicasurfaceassustainablehybridbiosorbentforacidorange8dyecaptureeffectoftemperatureinadsorptionequilibriumandkinetics
AT błachniomagdalena chitosandepositedontofumedsilicasurfaceassustainablehybridbiosorbentforacidorange8dyecaptureeffectoftemperatureinadsorptionequilibriumandkinetics
AT slabonadam chitosandepositedontofumedsilicasurfaceassustainablehybridbiosorbentforacidorange8dyecaptureeffectoftemperatureinadsorptionequilibriumandkinetics
AT jaworskialeksander chitosandepositedontofumedsilicasurfaceassustainablehybridbiosorbentforacidorange8dyecaptureeffectoftemperatureinadsorptionequilibriumandkinetics
AT tertykhvalentina chitosandepositedontofumedsilicasurfaceassustainablehybridbiosorbentforacidorange8dyecaptureeffectoftemperatureinadsorptionequilibriumandkinetics
AT deryłomarczewskaanna chitosandepositedontofumedsilicasurfaceassustainablehybridbiosorbentforacidorange8dyecaptureeffectoftemperatureinadsorptionequilibriumandkinetics
AT marczewskiadamw chitosandepositedontofumedsilicasurfaceassustainablehybridbiosorbentforacidorange8dyecaptureeffectoftemperatureinadsorptionequilibriumandkinetics