Modelling phosphate and arsenate adsorption on cerium dioxide: A density functional theory study

Khoa Minh Ta, Adam R. Symington, Joseph M. Flitcroft, Lisa J. Gillie, David J. Cooke, Runliang Zhu, Mário A. Gonçalves, Stephen C. Parker, Marco Molinari

Research output: Contribution to journalArticlepeer-review

Abstract

Phosphate and arsenate species provide challenging environmental problems necessitating the search for efficient removal mechanisms from natural waters. Arsenic and phosphorous compounds have a high affinity for metal (hydr)oxide surfaces, and since phosphate and arsenate are isostructural, they have similar adsorption behaviour. This study provides results on arsenate and phosphate adsorption onto cerium dioxide using density functional theory, which is a promising adsorbent for the removal of these species. Ceria was modelled as the {100}, {110}, and {111} faces representative of ceria nanoparticles, assuming compositions from fully oxidised to fully reduced surfaces. Phosphate is generally more stable than arsenate adsorption, in agreement with macroscopic experimental studies. However, in some of the probed surfaces and adsorption densities, the relative stability flipped, which is an important finding for the understanding of the competitive behaviour between the species, especially in systems controlled by fast initial adsorption kinetics. The strength of the adsorption is generally stronger as the concentration of surface Ce3+ increases, while remaining stable as the concentration of adsorbates increases. As the concentration of adsorbates increases, a complex hydrogen-bond network forms, but is not sufficient to stabilize the adsorption further as the adsorbates compete for surface anchoring sites disrupting the adsorption process.

Original languageEnglish
Article number163619
JournalApplied Surface Science
Volume708
Early online date24 May 2025
DOIs
Publication statusE-pub ahead of print - 24 May 2025

Data Availability Statement

Raw data is available from https://doi.org/10.17632/bvvtd9fgz4.

Funding

KMT is funded via the Vice Chancellor’s Scholarship Scheme at the University of Huddersfield. Analysis was performed on the Orion computing facility and the Violeta HPC at the University of Huddersfield. Calculations were run on the ARCHER2 UK National Supercomputing Services via our membership of the UK HEC Materials Chemistry Consortium (MCC; EPSRC EP/X035859/1). MAG acknowledges funding from the project UIDB/50019/2020 to IDL, by Fundação para a Ciência e a Tecnologia, I.P./MCTES through PIDDAC National funds.

FundersFunder number
Engineering and Physical Sciences Research CouncilEP/X035859/1

Keywords

  • Arsenate adsorption
  • Arsenic removal
  • Ceria nanoparticles
  • Cerium oxide
  • Phosphate adsorption
  • Phosphorus removal

ASJC Scopus subject areas

  • Condensed Matter Physics
  • Surfaces and Interfaces
  • Surfaces, Coatings and Films

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