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Biogenic fabrication of S-scheme NiO–FeWO4 heterojunction nanocomposite using Cassava (Manihot esculenta Crantz) leaf extract for visible-light-driven dye degradation: synthesis, characterisation and photocatalytic evaluation


Citation

Lee, Fatimah and Abdullah, Luqman Chuah and Ramli, Irmawati and Shamsuri, Ahmad Adlie and Daik, Rusli and Mohd Noor, Ikhwan Syafiq and Md Jamil, Siti Nurul Ain (2025) Biogenic fabrication of S-scheme NiO–FeWO4 heterojunction nanocomposite using Cassava (Manihot esculenta Crantz) leaf extract for visible-light-driven dye degradation: synthesis, characterisation and photocatalytic evaluation. Ceramics International, 51 (29). pp. 60217-60233. ISSN 0272-8842

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
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