Benzil Schiff Base Side-Chain Polymer-Crosslinked Chitosan Via Hydrothermal Process for Reactive Orange 16 Dye Removal: An Optimized and Comparative Study with Chitosan

Herein, a novel hydrothermally cross-linked chitosan-benzil (CTS-BZ) was prepared by a facile hydrothermal process. The physicochemical characteristics of the developed adsorbents were analyzed using CHN-O, BET, XRD, FTIR, pHpzc, and SEM analytical techniques. The characterization results demonstrat...

Full description

Bibliographic Details
Published in:Journal of Polymers and the Environment
Main Author: Normi N.I.; Abdulhameed A.S.; Surip S.N.; ALOthman Z.A.; Wilson L.D.; Jawad A.H.
Format: Article
Language:English
Published: Springer 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85144232226&doi=10.1007%2fs10924-022-02727-4&partnerID=40&md5=198d7245e3215a2a6a7765fa7238d49a
id 2-s2.0-85144232226
spelling 2-s2.0-85144232226
Normi N.I.; Abdulhameed A.S.; Surip S.N.; ALOthman Z.A.; Wilson L.D.; Jawad A.H.
Benzil Schiff Base Side-Chain Polymer-Crosslinked Chitosan Via Hydrothermal Process for Reactive Orange 16 Dye Removal: An Optimized and Comparative Study with Chitosan
2023
Journal of Polymers and the Environment
31
5
10.1007/s10924-022-02727-4
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85144232226&doi=10.1007%2fs10924-022-02727-4&partnerID=40&md5=198d7245e3215a2a6a7765fa7238d49a
Herein, a novel hydrothermally cross-linked chitosan-benzil (CTS-BZ) was prepared by a facile hydrothermal process. The physicochemical characteristics of the developed adsorbents were analyzed using CHN-O, BET, XRD, FTIR, pHpzc, and SEM analytical techniques. The characterization results demonstrated the mesoporous and crystal line nature of the CTS-BZ as well as the successful grafting of the aromatic ring of the BZ onto the CTS chains. The hydrothermally cross-linked CTS-BZ and chitosan (CTS) were employed for the removal of reactive orange 16 (RO16) dye in a comparative way. Response surface methodology (RSM) was adopted in collaboration with Box-Behnken design (BBD) to optimize the important parameters impacting RO16 adsorption, namely; adsorbent dose (A: 0.02–0.08 g), pH (B: 4–10), and time (C: 5–25). The Langmuir and Freundlich models accurately described the isotherm adsorption data of RO16 by CTS and RO16 by CTS-BZ, respectively. Kinetic adsorption results for RO16 by both CTS beads and CTS-BZ were well-described by the pseudo-second-order model. Remarkably, the hydrothermally cross-linked CTS-BZ revealed a maximum adsorption capacity for RO16 of 291.8 mg/g, as compared with the CTS’s adsorption capacity of 227.5 mg/g. The adsorption of RO16 onto the hydrothermally cross-linked CTS-BZ surface is largely controlled by a variety of mechanisms including electrostatic forces, H-bonding, π-π stacking, and n-π interactions. This study shows that novel hydrothermally cross-linked CTS-BZ outperforms pristine CTS beads as a very effective adsorbent for the removal of hazardous contaminants from water. © 2022, The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.
Springer
15662543
English
Article

author Normi N.I.; Abdulhameed A.S.; Surip S.N.; ALOthman Z.A.; Wilson L.D.; Jawad A.H.
spellingShingle Normi N.I.; Abdulhameed A.S.; Surip S.N.; ALOthman Z.A.; Wilson L.D.; Jawad A.H.
Benzil Schiff Base Side-Chain Polymer-Crosslinked Chitosan Via Hydrothermal Process for Reactive Orange 16 Dye Removal: An Optimized and Comparative Study with Chitosan
author_facet Normi N.I.; Abdulhameed A.S.; Surip S.N.; ALOthman Z.A.; Wilson L.D.; Jawad A.H.
author_sort Normi N.I.; Abdulhameed A.S.; Surip S.N.; ALOthman Z.A.; Wilson L.D.; Jawad A.H.
title Benzil Schiff Base Side-Chain Polymer-Crosslinked Chitosan Via Hydrothermal Process for Reactive Orange 16 Dye Removal: An Optimized and Comparative Study with Chitosan
title_short Benzil Schiff Base Side-Chain Polymer-Crosslinked Chitosan Via Hydrothermal Process for Reactive Orange 16 Dye Removal: An Optimized and Comparative Study with Chitosan
title_full Benzil Schiff Base Side-Chain Polymer-Crosslinked Chitosan Via Hydrothermal Process for Reactive Orange 16 Dye Removal: An Optimized and Comparative Study with Chitosan
title_fullStr Benzil Schiff Base Side-Chain Polymer-Crosslinked Chitosan Via Hydrothermal Process for Reactive Orange 16 Dye Removal: An Optimized and Comparative Study with Chitosan
title_full_unstemmed Benzil Schiff Base Side-Chain Polymer-Crosslinked Chitosan Via Hydrothermal Process for Reactive Orange 16 Dye Removal: An Optimized and Comparative Study with Chitosan
title_sort Benzil Schiff Base Side-Chain Polymer-Crosslinked Chitosan Via Hydrothermal Process for Reactive Orange 16 Dye Removal: An Optimized and Comparative Study with Chitosan
publishDate 2023
container_title Journal of Polymers and the Environment
container_volume 31
container_issue 5
doi_str_mv 10.1007/s10924-022-02727-4
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85144232226&doi=10.1007%2fs10924-022-02727-4&partnerID=40&md5=198d7245e3215a2a6a7765fa7238d49a
description Herein, a novel hydrothermally cross-linked chitosan-benzil (CTS-BZ) was prepared by a facile hydrothermal process. The physicochemical characteristics of the developed adsorbents were analyzed using CHN-O, BET, XRD, FTIR, pHpzc, and SEM analytical techniques. The characterization results demonstrated the mesoporous and crystal line nature of the CTS-BZ as well as the successful grafting of the aromatic ring of the BZ onto the CTS chains. The hydrothermally cross-linked CTS-BZ and chitosan (CTS) were employed for the removal of reactive orange 16 (RO16) dye in a comparative way. Response surface methodology (RSM) was adopted in collaboration with Box-Behnken design (BBD) to optimize the important parameters impacting RO16 adsorption, namely; adsorbent dose (A: 0.02–0.08 g), pH (B: 4–10), and time (C: 5–25). The Langmuir and Freundlich models accurately described the isotherm adsorption data of RO16 by CTS and RO16 by CTS-BZ, respectively. Kinetic adsorption results for RO16 by both CTS beads and CTS-BZ were well-described by the pseudo-second-order model. Remarkably, the hydrothermally cross-linked CTS-BZ revealed a maximum adsorption capacity for RO16 of 291.8 mg/g, as compared with the CTS’s adsorption capacity of 227.5 mg/g. The adsorption of RO16 onto the hydrothermally cross-linked CTS-BZ surface is largely controlled by a variety of mechanisms including electrostatic forces, H-bonding, π-π stacking, and n-π interactions. This study shows that novel hydrothermally cross-linked CTS-BZ outperforms pristine CTS beads as a very effective adsorbent for the removal of hazardous contaminants from water. © 2022, The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.
publisher Springer
issn 15662543
language English
format Article
accesstype
record_format scopus
collection Scopus
_version_ 1825722580786479104