Lu Hanwei, Ye Hebo, Xin Jiafan, You Lei
State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian, 350002, China.
University of Chinese Academy of Sciences, Beijing, 100049, China.
Angew Chem Int Ed Engl. 2025 Mar 3;64(10):e202421175. doi: 10.1002/anie.202421175. Epub 2025 Jan 9.
Macrocycles represent one important class of functional molecules, and dynamic macrocycles with the potential of cleavability, adaptability, and topological conversion are challenging. Herein we report photoswitchable allosteric and topological control of dynamic covalent macrocycles and further the use in guest binding and mechanically interlocked molecules. The manipulation of competing ring-chain equilibria and bond formation/scission within reaction systems enabled light-induced structural regulation over dithioacetal and thioacetal dynamic bonds, accordingly realizing bidirectional switching between crown ether-like covalent macrocycles and their linear counterparts. The on-demand photoswitchable topological transformation of macrocycles further allowed guest recognition/release exhibiting controllable binding affinity and selectivity. To showcase the capability light-triggered assembly/disassembly of diverse mechanically interlocked structures, such as rotaxanes and catenanes, was achieved. The realization of photoswitchable topological conversion of covalent macrocycles, which has been rarely reported before, demonstrates the potential of light-triggered reactivity control and structural reconfiguration for enhanced complexity and sophisticated function. The strategies and results should be appealing to endeavors in molecular recognition, dynamic assemblies, molecular machines, and intelligent materials.
大环化合物是一类重要的功能分子,而具有可裂解性、适应性和拓扑转换潜力的动态大环化合物具有挑战性。在此,我们报道了对动态共价大环化合物的光开关变构和拓扑控制,以及在客体结合和机械互锁分子中的进一步应用。通过操纵反应体系中相互竞争的环-链平衡以及键的形成/断裂,实现了对二硫缩醛和硫缩醛动态键的光诱导结构调控,从而在冠醚状共价大环化合物及其线性对应物之间实现双向切换。大环化合物按需进行的光开关拓扑转变进一步实现了客体识别/释放,展现出可控的结合亲和力和选择性。为了展示光触发组装/拆卸各种机械互锁结构(如轮烷和索烃)的能力,我们也成功实现了这一目标。共价大环化合物的光开关拓扑转换此前鲜有报道,这一成果展示了光触发反应性控制和结构重构在增强复杂性和实现复杂功能方面的潜力。这些策略和结果对于分子识别、动态组装、分子机器和智能材料等领域的研究应具有吸引力。