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September 16, 2025AIChE Journal0 citations

Computational screening of fly ash zeolite sorbents for boric acid removal

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JFJohn FindleyEGEvan GraniteEGEric Grol

Key Points

  • Tailored fly ash-derived zeolites demonstrate effective boric acid removal from leachate ponds, showcasing high sorption capacities.
  • The use of low Si/Al ratio chabazite and phillipsite frameworks exchanged with Ca2+ or Na+/Ca2+ mixtures resulted in the highest adsorption rates.
  • Molecular simulations applied quantum mechanical calculations to optimize zeolite performance based on varying cation types and ratios.
  • D2FF force fields produced better energy reproducibility compared to traditional UFF models, enhancing predictive capabilities.

Abstract

Abstract In the United States, many impoundments at coal‐fired power plants contain elevated contaminants like arsenic, boron, barium, and selenium. Zeolites synthesized from fly ash show promise as sorbents for these contaminants. However, optimizing sorption capacity is challenging due to numerous possible topologies, silicon to aluminum (Si/Al) ratios, and cation types. In this study, molecular simulations are used to design cationic zeolites for boric acid adsorption. Force field models based on quantum mechanical calculations (PBE + D2) for Na‐, Ca‐, Mn‐, and Fe‐exchanged chabazite and LTA are presented. The new D2FF force fields reproduce DFT energies with about half the error of UFF. Zeolite performance depends on Si/Al ratio and cation type, with low Si/Al ratio chabazite (CHA) and phillipsite (PHI) zeolite frameworks exchanged with Ca 2+ or Na + /Ca 2+ mixtures showing the highest adsorption. These findings suggest tailored fly ash‐derived zeolites could provide effective boron removal from leachate ponds.

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Cite This Study

Findley et al. (2025) studied this question.

synapsesocial.com/papers/68d454d131b076d99fa5a747https://doi.org/10.1002/aic.70065
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