Cellulose based pH-sensitive hydrogel for highly efficient dye removal in water treatment: kinetic, thermodynamic, theoretical and computational studies

In this paper, a new green pH-sensitive EDTA crosslinked HEC (cellulose-based hydrogel (swelling rate ~ 1005%)) adsorbent was successfully elaborated. The synthesis of HEC-EDTA at the high advanced crosslinking degree (up to 92%), was carried out using DAEDT and DMAP as acyl transfer agent, where th...

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Veröffentlicht in:Cellulose (London) 2022-05, Vol.29 (8), p.4539-4564
Hauptverfasser: Jabir, Loubna, El-Hammi, Hayat, Mohammed, Nor, Jilal, Issam, El Idrissi, Abderrahmane, Amhamdi, Hassan, Abou-Salama, Mohamed, El Ouardi, Youssef, El Barkany, Soufian, Laatikainen, Katri
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container_end_page 4564
container_issue 8
container_start_page 4539
container_title Cellulose (London)
container_volume 29
creator Jabir, Loubna
El-Hammi, Hayat
Mohammed, Nor
Jilal, Issam
El Idrissi, Abderrahmane
Amhamdi, Hassan
Abou-Salama, Mohamed
El Ouardi, Youssef
El Barkany, Soufian
Laatikainen, Katri
description In this paper, a new green pH-sensitive EDTA crosslinked HEC (cellulose-based hydrogel (swelling rate ~ 1005%)) adsorbent was successfully elaborated. The synthesis of HEC-EDTA at the high advanced crosslinking degree (up to 92%), was carried out using DAEDT and DMAP as acyl transfer agent, where the lamellar morphology (2D-microstructure) was highly suggested based on the average functionality of the reaction system. The crosslinking degree was confirmed using structural analyzes (FTIR and 13C CP/MAS-NMR) and elemental profile analysis. The new EDTA crosslinked HEC demonstrated a high uptake capacity (~ 2000 mg g −1 ) to aquatic micropollutants, especially methylene blue as cationic dyes model. The kinetic study showed that the adsorption process was well described by the pseudo-second-order kinetic, while the thermodynamic parameters exhibited a negative effect of temperature indicating a physical adsorption process. In addition, the adsorption capacity was studied varying to the experimental conditions (pH, contact time, concentration, etc.), and the Freundlich model revealed a strong correlation to the experimental data indicating an energetic heterogeneity of the surface active sites. Furthermore, using COMPASS II, the molecular dynamics (MD) simulations were conducted to optimize the chemical system, where the results showed the predominance of non-covalent molecular adsorbent-adsorbate interactions, which governs cluster design and configurations.
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subjects Adsorbates
Adsorbents
Adsorption
Bioorganic Chemistry
Cationic dyes
Cellulose
Ceramics
Chemistry
Chemistry and Materials Science
Composites
Configuration management
Crosslinking
Ethylenediaminetetraacetic acids
Glass
Heterogeneity
Hydrogels
Methylene blue
Molecular dynamics
Natural Materials
NMR
Nuclear magnetic resonance
Organic Chemistry
Original Research
Physical Chemistry
Polymer Sciences
Sustainable Development
Temperature effects
Thermodynamics
Water treatment
title Cellulose based pH-sensitive hydrogel for highly efficient dye removal in water treatment: kinetic, thermodynamic, theoretical and computational studies
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