Ultraviolet aging of polyethylene microbeads and cadmium (Cd2+) uptake in water: surface morphology, kinetics, and isotherm analysis

Jumali, Saiful and Azman, Shamila and Mohamed Ibrahim, Mohd Johan and Sharipudin, Siti Shahidah (2026) Ultraviolet aging of polyethylene microbeads and cadmium (Cd2+) uptake in water: surface morphology, kinetics, and isotherm analysis. Journal of Smart Science and Technology, 6 (1): 1. pp. 1-10. ISSN 2785-924X

Official URL: https://jsst.uitm.edu.my

Identification Number (DOI): 10.24191/jsst.v6i1.193

Abstract

Polyethylene (PE) microbeads were subjected to three months of ultraviolet (UV) aging and evaluated for surface transformation and cadmium (Cd²⁺) uptake in aqueous solution. Scanning electron microscopy analysis showed that UV-aged microbeads developed pronounced surfaces, roughening with cracks and pit-like defects compared with virgin beads. This indicated an increased surface heterogeneity. Batch adsorption experiments (initial concentration, C0 = 0.2–1.0 mg L⁻¹) exhibited rapid Cd²⁺ uptake during the first few hours, followed by a slower approach to equilibrium at approximately 24–32 hours. Kinetic modelling showed that the pseudo-second-order (PSO) model better described the time-dependent data than the pseudo-first-order (PFO) model (coefficient of determination, R² ≈ 0.94–0.98 vs. 0.00–0.39), although model fits are treated as empirical descriptors rather than definitive evidence of a single adsorption mechanism. Equilibrium data were included using both Langmuir and Freundlich isotherms, which gave similarly good fits (R² = 0.95 and 0.96, respectively) within the tested concentration range; therefore, no conclusive preference for one isotherm was asserted. The Langmuir maximum adsorption capacity (qmax = 0.0060 mg g⁻¹) was extremely low, indicating that UV-aged PE microbeads are not suitable as engineered sorbents for water treatment. Instead, their environmental relevance is better interpreted as auxiliary sorbent phases and mobile vectors that may contribute to Cd²⁺ redistribution in aquatic systems. This study supports SDG 14 by demonstrating that UV aged PE microbeads can adsorb and transport Cd2+, underscoring their role in spreading pollutants and threatening aquatic ecosystem health.

Metadata

Item Type: Article
Creators:
Creators
Email / ID Num.
Jumali, Saiful
saiful9649@uitm.edu.my
Azman, Shamila
UNSPECIFIED
Mohamed Ibrahim, Mohd Johan
UNSPECIFIED
Sharipudin, Siti Shahidah
UNSPECIFIED
Subjects: T Technology > TA Engineering. Civil engineering > Materials of engineering and construction > Plastics
T Technology > TP Chemical technology > Polyethylene
Divisions: Universiti Teknologi MARA, Sarawak > Kota Samarahan II Campus
Journal or Publication Title: Journal of Smart Science and Technology
UiTM Journal Collections: UiTM Journals > Journal of Smart Science and Technology (JSST)
ISSN: 2785-924X
Volume: 6
Number: 1
Page Range: pp. 1-10
Related URLs:
Keywords: Microplastics, Polyethylene (PE), UV aging, Cadmium (Cd²⁺), Adsorption kinetics, Adsorption isotherms, Pollutant vector
Date: 31 March 2026
URI: https://ir.uitm.edu.my/id/eprint/134740
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