Mechanistic insights into fluoride removal by P-loaded calcite

Phosphate (P) and fluoride commonly coexist in aquatic systems. Although P loading restructures calcite through Ca P phase formation, its influence on subsequent fluoride removal remains unclear. Calcite conditioned with high P concentrations at pH 8.3, 7.7, and 7.3 developed P-rich surface layers, with 56–95% higher specific surface areas and Ca P signatures in FTIR and XPS. SEM–EDS further revealed the development of Ca P coatings with uniform elemental distributions. Fluoride-removal experiments revealed a concentration-dependent response. At low fluoride concentrations (3–20 mg·L −1 ), P-loaded calcite consistently outperformed pristine calcite, achieving 33–60% higher removal efficiencies without measurable changes in solution pH or Ca 2+ concentration, indicating adsorption-dominated immobilization. XPS F 1 s spectra (∼684.4 eV) support fluoride association with Ca P surface domains under these conditions. At 20 mg·L −1 fluoride, HRTEM/SAED identified calcite lattice and diffraction features but no self-consistent evidence of crystalline CaF 2 in the examined regions. DFT yielded stronger F − adsorption on a representative Ca₃(PO 4 ) 2 (010) surface than on calcite (104) (−5.926 versus −3.655 eV) and showed adsorption-induced interfacial charge redistribution. In contrast, at high fluoride concentration (100 mg·L −1 ), fluoride removal was accompanied by pronounced Ca 2+ depletion and pH increases, and F 1 s binding energies (∼684.7–685.0 eV) characteristic of CaF 2 , demonstrating precipitation-dominated control irrespective of P conditioning. These results show that P loading creates chemically distinct Ca P surface environments that enhance fluoride adsorption only within a concentration window where precipitation is not thermodynamically dominant. This study clarifies the mechanistic basis for repurposing P-loaded calcite in fluoride control applications.

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Publication Details

Journal
Journal of Water Process Engineering
Published
2026-09-17
DOI
https://doi.org/10.1016/j.jwpe.2026.110909
Primary Topic
Fluoride Effects and Removal
Type
article
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Mechanistic insights into fluoride removal by P-loaded calcite

Naren TuYa, Zhenxuan Li, Lidong Huang, He Li et al.
Journal of Water Process Engineering
Fluoride Effects and Removal
article

Mechanistic insights into fluoride removal by P-loaded calcite

Naren TuYa, Zhenxuan Li, Lidong Huang, He Li, Jingxin Shi, Jian Ding, Zhu Zhu
article en

Abstract

Phosphate (P) and fluoride commonly coexist in aquatic systems. Although P loading restructures calcite through Ca P phase formation, its influence on subsequent fluoride removal remains unclear. Calcite conditioned with high P concentrations at pH 8.3, 7.7, and 7.3 developed P-rich surface layers, with 56–95% higher specific surface areas and Ca P signatures in FTIR and XPS. SEM–EDS further revealed the development of Ca P coatings with uniform elemental distributions. Fluoride-removal experiments revealed a concentration-dependent response. At low fluoride concentrations (3–20 mg·L −1 ), P-loaded calcite consistently outperformed pristine calcite, achieving 33–60% higher removal efficiencies without measurable changes in solution pH or Ca 2+ concentration, indicating adsorption-dominated immobilization. XPS F 1 s spectra (∼684.4 eV) support fluoride association with Ca P surface domains under these conditions. At 20 mg·L −1 fluoride, HRTEM/SAED identified calcite lattice and diffraction features but no self-consistent evidence of crystalline CaF 2 in the examined regions. DFT yielded stronger F − adsorption on a representative Ca₃(PO 4 ) 2 (010) surface than on calcite (104) (−5.926 versus −3.655 eV) and showed adsorption-induced interfacial charge redistribution. In contrast, at high fluoride concentration (100 mg·L −1 ), fluoride removal was accompanied by pronounced Ca 2+ depletion and pH increases, and F 1 s binding energies (∼684.7–685.0 eV) characteristic of CaF 2 , demonstrating precipitation-dominated control irrespective of P conditioning. These results show that P loading creates chemically distinct Ca P surface environments that enhance fluoride adsorption only within a concentration window where precipitation is not thermodynamically dominant. This study clarifies the mechanistic basis for repurposing P-loaded calcite in fluoride control applications.

Journal of Water Process EngineeringVol. 93
Inner Mongolia Agricultural University (CN), Nanjing University of Information Science and Technology (CN), Inner Mongolia University (CN), Inner Mongolia Academy of Agricultural & Animal Husbandry Sciences (CN)
Life below water
Openalex Percentile: Top 21%
Fluoride Effects and Removal
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