Insights into the adsorption of ibuprofen onto polyethylene microplastics using molecular dynamic simulation

  • Muhammad Ikhwan Nizam
  • , Nurfarwizah Adzuan Hafiz
  • , Mohamed Syazwan Osman*
  • , Mohamad Syafiq Abdul Wahab
  • , Lei Wang
  • , Noor Fitrah Abu Bakar
  • , Mohamed Hasaan Hussain
  • , Nur Lina Syahirah Mustapa
  • , Chongqing Wang*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Microplastics (MPs) and pharmaceutical pollutants are emerging contaminants in aquatic environments. While microplastics can adsorb pharmaceutical pollutants, the mechanisms governing their interactions and the factors influencing these processes are not well understood. Understanding these interactions is crucial for assessing the environmental impact of co-existing pollutants. This study investigates the interaction between polyethylene (PE) MPs and ibuprofen (IB) in aquatic environments using a combination of molecular dynamics simulation (MDS) and batch adsorption experiments. The isotherms and kinetic models were applied to analyze the adsorption data, while MDS provided insights into the molecular interactions occurring between IB and PE MPs in aqueous environments. The adsorption capacity of IB onto PE MPs reaches 0.4139 mg/g, and the adsorption process follows the Temkin (R2 = 0.9671) and Elovich (R2 = 0.9856) models, suggesting a complex adsorption mechanism involving multilayer adsorption on the non-uniform surface. MDS reveals that non-bond interactions, particularly van der Waals forces, dominate the interaction between IB and PE MPs. This study provides critical insights into how MPs and pharmaceutical pollutants interact in aqueous environments, offering a deeper understanding of the environmental behavior of these co-existing pollutants.

Original languageEnglish
Article number126094
JournalJournal of Environmental Management
Volume389
DOIs
StatePublished - Aug 2025
Externally publishedYes

Keywords

  • Aquatic contamination
  • Co-existing pollutants
  • Microplastics
  • Molecular dynamics simulation
  • Pharmaceutical

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