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Updated: Sep 6, 2026

An Efficient Method for Selective Desalination of Radioactive Iodine Anions by Using Gold Nanoparticles-Embedded Membrane Filter
Published on: July 13, 2018
Radical-Integrated Phosphorus-Containing Ionic Organic Cage for Efficient Gold Recovery From Complex Liquids
Xue-Jing Zhao1, Ke Zhao1, Hao-Han Jiang1
1MOE Key Laboratory of Cluster Science, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing, P.R. China.
Abstract:
The development of advanced adsorbents for the selective and efficient recovery of gold from complex aqueous matrices is of paramount importance for sustainable resource recycling. Here, we report a phosphorus-functionalized, quaternized ammonium cages (Phos-QA-Cage-Cl) featuring multiple integrated binding sites, which delivers exceptional Au(III) uptake of up to 2331 mg g- 1. The intrinsically cationic skeleton and Au-affinitive phosphorus sites synergistically capture AuCl4 - through combined electrostatic and coordination interactions. Thermal activation generates persistent radicals within the cage, which further enhance Au uptake by reducing Au(III) to nanoparticles, followed by halide-promoted ripening of the nascent Au species. DFT calculations reveal the cooperative roles of noncovalent interactions, coordination bonding and radical-assisted redox chemistry in driving efficient Au(III) capture. As a result, the cage exhibits rapid adsorption kinetics, high selectivity, and good recyclability in complex aqueous matrices. Leveraging its solution processability, a mixed-matrix membrane based on polyvinylidene fluoride is fabricated, enabling efficient filtration and recovery of Au(III) (up to 95%) from dilute solutions, with a high permeate flux (87 L m- 1 h- 1 bar- 1). This work introduces a new class of functionalized porous cages for precious metal recovery and highlights the potential of integrating molecular design with solution processibility for environmental applications.
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