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Adsorption is one of the most convenient and efficient techniques for capturing and enriching various molecules. However, current strategies for the absorbent regeneration still face the challenges of labor-intensive and/or environmentally unfriendly procedures. In this study, a novel nonporous adaptive framework (NAF) was constructed through rigid π-stacked azobenzene (Azo) bridges and flexible non-stacked amino joints. The precisely tuned flexibility of this framework enables adaptive and accessible pores, and sensitively photo-responsive behavior. The results demonstrate that Azo-NAF exhibits a remarkable iodine adsorption capacity up to 5.8 g/g. Notably, the adsorbed iodine molecules can be readily released by ultraviolet (UV) irradiation, allowing for facile regeneration and reuse of Azo-NAF. Mechanistic studies reveal that iodine molecules interact more strongly with cis-Azo-NAF than trans-Azo-NAF. Thus, accompanying the UV-induced transition from cis- to trans-configuration of Azo units, the trapped iodine molecules are released from the framework. Moreover, this unique feature of Azo-NAF enables remote regulation of iodine-catalyzed organic reactions. Our finding thus provides a new design strategy for dynamic frameworks and establish how their switchable configurations can be harnessed for a tunable adsorption and desorption performance.
Zhou et al. (Thu,) studied this question.
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