Citation
Abstract
Industrial dye effluents such as methylene blue (MB) resist biodegradation, generate carcinogenic intermediates and bioaccumulate in ecosystems, demanding advanced remediation strategies. Photocatalysis utilizing semiconductor-based materials as photocatalysts offers a sustainable route. Nickel oxide (NiO), a p-type semiconductor, exhibits excellent hole mobility, however suffers from wide bandgap, limited to UV-light activity and rapid charge recombination. In this study, coupling NiO with a narrow bandgap n-type semiconductor, iron (II) tungstate (FeWO4) has successfully extended its light absorption and enhances charge separation, improving the photocatalytic activity of NiOnps. An S-scheme NiO-FeWO4 heterojunction nanocomposite was fabricated via PEG-200 binder-assisted physical coupling technique, using Cassava leaves extract (CMLE) as a natural reducing and stabilising agent. FTIR analysis confirms the coupling of NiOnps and FeWO4nps through vibrational modes of Ni-O, Fe-O, W-O and O-WO bonds. XRD analysis shows an enhanced crystallinity of NiO-FeWO4 heterojunction nanocomposite (88.73 %) compared to pristine NiOnps (75.14 %) and FeWO4nps (66.54 %). FESEM and HRTEM images of NiO-FeWO4 depict a clear interfacial contact of granular FeWO4nps onto rod-like NiOnps, with narrow PDI values indicating the feasibility of CMLE to maintain size uniformity. The p-n heterojunction formation significantly reduced the bandgap energy from 2.82 eV to 2.10 eV, suppressed PL intensity, depleted charge transfer resistance and enhanced photocurrent response. Hence, NiO-40FeWO4 nanocomposite demonstrates outstanding photocatalytic performance under visible light irradiation towards MB (10 ppm) degradation (96.72 %) with a rate constant of 0.04996 min−1, far surpassing pristine NiOnps (21.90 %, 0.0035 min−1) and FeWO4nps (60.45 %, 0.0023 min−1). This work presents a synergistic strategy that integrates biogenic synthesis and capability of binder-assisted coupling technique to design heterojunction formation, yielding a robust photocatalyst with enhanced structural, electronic and optical properties for sustainable wastewater remediation.
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Additional Metadata
| Item Type: | Article |
|---|---|
| Subject: | Electronic, Optical and Magnetic Materials |
| Subject: | Ceramics and Composites |
| Divisions: | Faculty of Engineering Faculty of Science Institute of Tropical Forestry and Forest Products Centre for Foundation Studies in Science of Universiti Putra Malaysia |
| DOI Number: | https://doi.org/10.1016/j.ceramint.2025.10.220 |
| Publisher: | Elsevier |
| Keywords: | NiO-FeWO4 heterojunction; Photodegradation; S-scheme; Visible-light |
| Depositing User: | Ms. Nur Faseha Mohd Kadim |
| Date Deposited: | 20 Feb 2026 02:30 |
| Last Modified: | 20 Feb 2026 02:30 |
| Altmetrics: | http://www.altmetric.com/details.php?domain=psasir.upm.edu.my&doi=10.1016/j.ceramint.2025.10.220 |
| URI: | http://psasir.upm.edu.my/id/eprint/122606 |
| Statistic Details: | View Download Statistic |
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