A negatively-charged supramolecular trap for precisely catching strontium ion.

Li, Lei; Liu, Ziyi; Xu, Xiaocheng; Xu, Lei; Yang, Xiaofan; Guan, Hanxi; Li, Zhonglong; Xiao, Chengliang · Nat Commun · 2025

basic_science · Level V

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Abstract

Due to the analogous physicochemical properties and weak coordination ability of alkali and alkaline earth metals, accurate separation of radioactive <sup>90</sup>Sr from groundwater or seawater still presents a big challenge in environmental radioactivity remediation. Here we mimic the complexation behavior of molecular crown-ether carboxylic acids to construct an elegant negatively charged supramolecular trap in an anionic crown ether-based metal-organic framework (ZJU-X99) for precisely catching Sr<sup>2+</sup>. Owing to the synergistic effects of electrostatic interactions arising from the In(COO)<sub>4</sub><sup>-</sup> nodes and supramolecular host-guest recognition from the 18-crown-6 rings, ZJU-X99 exhibits rapid adsorption kinetics (1 min), high adsorption capacity (263 mg/g), and exceptional selectivity for Sr<sup>2+</sup> even when 1000-fold of Na⁺, K⁺ and Cs⁺ coexist. Relative to alkali metals, Sr<sup>2+</sup> ions are intricately ensconced within the supramolecular trap, resulting in lowest binding energy and minimal structural alterations. Dynamic column experiments and radioactive <sup>90</sup>Sr decontamination trials further validate its practical application prospects. Our findings offer valuable insights into the design of supramolecular frameworks featuring tailored binding sites for targeted ions.