Green synthesis, characterization, and thermal stability of Albizia adianthifolia leaf–mediated CaO nanoparticles for anticorrosion applications
| dc.contributor.author | Silas Oseme Okuma | |
| dc.date.accessioned | 2026-09-05T04:22:13Z | |
| dc.date.issued | 2026-03-06 | |
| dc.description.abstract | This study presents the first report on the green synthesis of ultrasmall calcium oxide nanoparticles (AA–CaO NPs) using Albizia adianthifolia leaf extract and provides a systematic evaluation of their corrosion inhibition performance in 1 M HCl solution. Transmission electron microscopy revealed predominantly quasi-spherical nanoparticles with an exceptionally narrow size distribution of 1–3 nm (average diameter 2.45 ± 0.81 nm), which is significantly smaller than the particle sizes typically reported for plant-mediated oxide systems.UV–Vis spectroscopy showed an absorption edge at 309 nm (4.0 eV), indicative of wide band-gap behavior, while FTIR analysis confirmed phytochemical surface functionalization through the presence of hydroxyl and C–O/C–O–C functional groups. Thermogravimetric analysis demonstrated high thermal stability, with ≥ 99% mass retention up to 184 ◦C.Corrosion inhibition performance was evaluated using gravimetric, atomic absorption, and ther mometric techniques. A maximum inhibition efficiency of 97.20% at 298 K (gravimetric) and 88.96% at 318 K (thermometric) was achieved at optimal concentrations of 1.0–1.5 g⋅L⁻¹ . The inhibition efficiency exhibited adsorption-controlled behavior, with a slight decline at higher concentrations due to surface-site saturation. Significant reductions in weight loss and Fe dissolution confirmed effective suppression of metal dissolution kinetics. The enhanced corrosion protection is attributed to a synergistic dual mechanism involving adsorption mediated barrier formation by phytochemical capping ligands and localized acid neutralization through CaO hydration to Ca(OH)₂. Furthermore, the ultrasmall particle size enhances adsorption density and promotes the formation of a compact, low-permeability protective film, resulting in thermally stable and highly efficient corrosion inhibition.Overall, these findings establish AA–CaO nanoparticles as a viable, high-performance, and environmentally sustainable alternative to conventional synthetic inhibitors for use in aggressive chloride environments. | |
| dc.identifier.issn | 2949-8295 | |
| dc.identifier.uri | https://repository.nmu.edu.ng/handle/123456789/611 | |
| dc.language.iso | en | |
| dc.publisher | Next Nanotechnology | |
| dc.subject | Albizia adianthifolia | |
| dc.subject | AA-CaO NPs | |
| dc.subject | Phytochemicals | |
| dc.subject | Barrier mechanism | |
| dc.subject | Interfacial adhesion | |
| dc.title | Green synthesis, characterization, and thermal stability of Albizia adianthifolia leaf–mediated CaO nanoparticles for anticorrosion applications | |
| dc.type | Article |