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October 23, 2025Water2 citationsOpen Access

Novel Microwave-Synthesized Bimetallic Ce-Al-MOFs with Efficient Phosphate Removal from Aquaculture Effluent: Synthesis, Characterization and Applications

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JZJian ZengJZJiangnan ZhaoZCZhenzhen Cai

Key Points

  • Phosphate removal surpassed 97% in tests with aquaculture effluent and coastal environments, addressing pollution challenges.
  • Phosphate adsorption capacity reached 136.99 mg P g−1, emphasizing the efficiency of the Ce-Al-MOFs adsorbent.
  • Synthesis involved novel microwave-assisted techniques to produce bimetallic Ce-Al-MOFs, enhancing reusability and selectivity.
  • Field tests supported the relevance of electrostatic interactions and kinetics in facilitating phosphorus removal from wastewater.

Abstract

The eutrophication of natural water is a severe environmental risk faced by coastal marine ecosystems, and the excess nitrogen and phosphorus in aquaculture effluent are one of the main sources of environmental pollution. Effectively reducing as well as controlling the phosphorus content in aquaculture effluent is of great importance for alleviating eutrophication and the governance of coastal environments. This study focuses on addressing phosphorus pollution by developing novel bimetallic Ce-Al-MOFs adsorbents via the microwave-assisted rapid synthesis method, among which the monomer Ce3Al3-BDC3 exhibits excellent phosphate adsorption capacity (136.99 mg P g−1) and great removal efficiency over a wide pH range (2~10). Batch experiments reveal that the adsorption is followed by pseudo-second-order kinetics and the Langmuir isotherm model, indicating monolayer chemisorption. The MOFs material shows high selectivity for phosphorus even under the interference of co-existing anions, as well as excellent reusability, retaining over 65% removal efficiency after six adsorption–desorption cycles. Field tests in coastal areas and indoor aquaculture systems both achieve over 97% phosphate removal, meeting discharge standards. A series of characterization methods identify ligand exchange, electrostatic interactions and surface complexation as key adsorption mechanisms. The Ce-Al-MOFs present a promising solution for mitigating eutrophication and managing aquaculture wastewater sustainably.

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Cite This Study

Zeng et al. (2025) studied this question.

synapsesocial.com/papers/68f9f86eb2c35e10cc4e3dc5https://doi.org/10.3390/w17203019
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