Regenerable chitosan-embedded magnetic iron oxide beads for nitrate removal from industrial wastewater
| Author | Nasir, Muntaha |
| Author | Javaid, Farhan |
| Author | Masood, M. Talha |
| Author | Arshad, Muhammad |
| Author | Yasir, Muhammad |
| Author | Sedlarik, Vladimir |
| Author | Qadir, Muhammad Abdel |
| Author | Qiblawey, Hazim |
| Author | Zhang, Wenjuan |
| Author | Deen, Kashif Mairaj |
| Author | Asselin, Edouard |
| Author | Ahmad, Nasir M. |
| Available date | 2026-01-20T10:05:15Z |
| Publication Date | 2024 |
| Publication Name | Environmental Science: Advances |
| Resource | Scopus |
| Identifier | http://dx.doi.org/10.1039/d3va00351e |
| Citation | Nasir, Muntaha, Farhan Javaid, M. Talha Masood, Muhammad Arshad, Muhammad Yasir, Vladimir Sedlarik, Muhammad Abdel Qadir et al. "Regenerable chitosan-embedded magnetic iron oxide beads for nitrate removal from industrial wastewater." Environmental Science: Advances 3, no. 4 (2024): 572-584. |
| ISSN | 27547000 |
| Abstract | Industrial sites worldwide significantly contribute to water pollution. Nitrates are a common effluent pollutant from such sites. Effective means to remove nitrate ions (NO3−) from polluted waters are needed. Chitosan beads, which are a non-toxic, biocompatible, and biodegradable polymer, are used for this purpose in this research. Iron-oxide nanoparticles are synthesized via the co-precipitation route and embedded into chitosan by chemical co-precipitation to form ion exchange chitosan beads (IECBs) for NO3− removal. The performance of the IECBs in a batch system was studied against NO3− adsorption from industrial water. Morphological, structural, and chemical characterization was performed by SEM, EDX mapping, BET, XRD, and FTIR, while the extent of NO3− adsorption was quantified using UV-vis spectroscopy. Different factors influencing the adsorption of NO3− on the IECBs were investigated, including the adsorbent dosage, pH of the solution, initial concentration, and interaction time. It is demonstrated that pseudo-second-order isothermal and kinetic models were best fits to the experimental data. It was found that the IECBs had a maximum adsorption capacity of 47.07 mg g−1 and could load up to ∼93% of the NO3− from the batch system. The regeneration efficiency for the IECBs over 5 cycles remained high in the range of 93% to 79%, indicating their potential for industrial water treatment use. |
| Sponsor | The authors are thankful to the National University of Sciences and Technology (NUST) Research Directorate, HEC, and NRPU through Project No. 6020 for all the technical assistance and financial support. The financial support from the Ministry of Education, Youth, and Sports of the Czech Republic DKRVO (RP/CPS/2022/002) is recognized by M. Y and V. S. The use of resources at the University of British Columbia is also acknowledged. |
| Language | en |
| Publisher | Royal Society of Chemistry |
| Subject | Chitosan-based adsorbents Magnetic iron oxide nanoparticles Nitrate removal Industrial wastewater treatment Adsorption kinetics and isotherms |
| Type | Article |
| Pagination | 572-584 |
| Issue Number | 4 |
| Volume Number | 3 |
Files in this item
This item appears in the following Collection(s)
-
Chemical Engineering [1312 items ]


