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Loading single lanthanide ion into aluminum molecular rings: water-stable sodalite cage for removal of nuclear-industry anions
Loading single lanthanide ion into aluminum molecular rings: water-stable sodalite cage for removal of nuclear-industry anions
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Loading single lanthanide ion into aluminum molecular rings: water-stable sodalite cage for removal of nuclear-industry anions
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Loading single lanthanide ion into aluminum molecular rings: water-stable sodalite cage for removal of nuclear-industry anions
Loading single lanthanide ion into aluminum molecular rings: water-stable sodalite cage for removal of nuclear-industry anions

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Loading single lanthanide ion into aluminum molecular rings: water-stable sodalite cage for removal of nuclear-industry anions
Loading single lanthanide ion into aluminum molecular rings: water-stable sodalite cage for removal of nuclear-industry anions
Journal Article

Loading single lanthanide ion into aluminum molecular rings: water-stable sodalite cage for removal of nuclear-industry anions

2023
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Overview
Based on our discovery of neutral aluminum molecular rings, we herein introduce rare earth ions into the center of the ring and reveal their structural adaptability. The resulting yoyo-like cationic macrocycles are highly adaptive to guests, creating unusual supramolecular assemblies. The first category is stacked with singly oriented rhombohedral channels, which exhibit fast and reversible solvent-triggered molecular motions and structural rearrangements The second type of assembly is that yoyo macrocycles and guest molecules form a nested host-guest sodalite cage supramolecular structure. It is uncommon for guest molecules to be well-defined within cages although caged structures have been well-documented Their host-guest interaction discussion reveals the self-adaptation and flexibility of the yoyo macrocycles. Considering their good water stability, we investigated their anion exchange properties. The results show that they have significant exchange capacity for KI/I 2 , ReO 4 − , and MnO 4 − , revealing their potential application in water purification and nuclear waste treatment.