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February 26, 2026Proceedings of the National Academy of Sciences3 citationsOpen Access

An accurate and efficient framework for modeling multimetal competitive adsorption on clay minerals

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PGPengyuan GaoXLXiandong LiuXLXiancai Lu

Key Points

  • This research aims to clarify the competitive adsorption mechanisms of multimetals on clay mineral surfaces.
  • Utilized first principles calculation to explore adsorption mechanisms
  • Developed a surface complexation model (SCM) framework
  • Conducted extensive tests to validate the SCM framework
  • The SCM framework accurately predicts toxic metal distribution
  • Metal ion size significantly influences complexation processes
  • Competitive adsorption plays a key role in metal adsorption on clay minerals

Abstract

Multiple toxic metal elements usually coexist and thus their competitive adsorption always occurs in natural and engineered clay-rich systems. Currently, however, the competitive adsorption mechanisms of multicomponent metal systems on clay mineral surfaces are still unclear, hindering the accurate prediction of toxic metal distribution in soil-water environments. In this study, we uncovered the microscopic mechanism of competitive adsorption of multimetals on heterogeneous clay mineral surfaces using first principles calculation, which indicates that metal ion size largely dominates their complexation on clay mineral surfaces, and competitive adsorption of metals plays a key modulatory role in the adsorption process on clay minerals. By integrating theoretically and experimentally derived multiscale information, a state-of-the-art surface complexation model (SCM) framework has been developed for modeling competitive adsorption. Extensive tests showed that the SCM framework accurately and efficiently reproduces the toxic metal distribution, which enables the quantitative prediction and understanding in realistic environmental conditions. Our results have wide applications in future fundamental studies and the design of environmental materials for toxic metal removal from aquatic systems.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/699f95ba1bc9fecf3dab3effhttps://doi.org/10.1073/pnas.2527567123
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