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Updated: Sep 7, 2026

Preparation of Highly Porous Coordination Polymer Coatings on Macroporous Polymer Monoliths for Enhanced Enrichment of Phosphopeptides
Published on: July 14, 2015
Chelation-Competition Interface Engineering of Polyphenol-Derived Coordination Polymers for Efficient Emulsion
Rongtong Wang1, Yijian Zheng2, Yuanhang Pi1
1College of Chemistry and Chemical Engineering, Central South University, Changsha 410083, China.
Abstract:
Polyphenol-derived metal coordination polymers (MCPs) are promising for constructing hydrophilic and underwater antifouling membrane interfaces. However, conventional pH-regulated fabrication of MCPs is often accompanied by metal-ion hydrolysis, which consumes available metal ions and interferes with effective MCP formation. Herein, a triethanolamine (TEOA)-mediated chelation-competition strategy was developed to guide the in situ assembly of MCPs on separation membranes. TEOA modulated Fe3+ coordination and reactivity, while pre-adsorbed tannic acid (TA) subsequently displaced TEOA through competitive coordination to form Fe-TA MCPs. DFT calculations showed that the conversion from Fe-TEOA to Fe-polyphenol coordination was thermodynamically favorable (ΔG = -335.68 kJ/mol), supporting the proposed chelation-competition mechanism. The resulting FTC-PVDF exhibited superhydrophilicity, underwater superoleophobicity, and low oil adhesion. To leverage the low oil-droplet sliding angle, an inclined gravity-assisted cross-flow mode was further designed to facilitate oil-droplet migration and detachment. FTC-PVDF achieved a high permeance of 5300.5 L∙m-2∙h-1∙bar-1 and separation efficiencies above 99.5% for surfactant-stabilized emulsions. This work provides a chelation-competition interface-engineering route for regulating polyphenol-derived MCP formation and constructing high-permeance antifouling membranes for emulsion separation.
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