Geng Jun-Shan, Mei Lei, Liang Yuan-Yuan, Yuan Li-Yong, Yu Ji-Pan, Hu Kong-Qiu, Yuan Li-Hua, Feng Wen, Chai Zhi-Fang, Shi Wei-Qun
Laboratory of Nuclear Energy Chemistry, Institute of High Energy Physics, Chinese Academy of Sciences, 100049, Beijing, China.
Key Laboratory of Radiation Physics and Technology of the Ministry of Education, Institute of Nuclear Science and Technology, College of Chemistry, Sichuan University, Chengdu, 610064, China.
Nat Commun. 2022 Apr 19;13(1):2030. doi: 10.1038/s41467-022-29738-y.
Molecular machines based on mechanically-interlocked molecules (MIMs) such as (pseudo) rotaxanes or catenates are known for their molecular-level dynamics, but promoting macro-mechanical response of these molecular machines or related materials is still challenging. Herein, by employing macrocyclic cucurbit[8]uril (CB[8])-based pseudorotaxane with a pair of styrene-derived photoactive guest molecules as linking structs of uranyl node, we describe a metal-organic rotaxane compound, U-CB[8]-MPyVB, that is capable of delivering controllable macroscopic mechanical responses. Under light irradiation, the ladder-shape structural unit of metal-organic rotaxane chain in U-CB[8]-MPyVB undergoes a regioselective solid-state [2 + 2] photodimerization, and facilitates a photo-triggered single-crystal-to-single-crystal (SCSC) transformation, which even induces macroscopic photomechanical bending of individual rod-like bulk crystals. The fabrication of rotaxane-based crystalline materials with both photoresponsive microscopic and macroscopic dynamic behaviors in solid state can be promising photoactuator devices, and will have implications in emerging fields such as optomechanical microdevices and smart microrobotics.
基于机械互锁分子(MIMs)如(准)轮烷或连环化合物的分子机器以其分子水平的动力学而闻名,但促进这些分子机器或相关材料的宏观机械响应仍然具有挑战性。在此,通过使用基于大环葫芦[8]脲(CB[8])的准轮烷,其具有一对苯乙烯衍生的光活性客体分子作为铀酰节点的连接结构,我们描述了一种金属有机轮烷化合物U-CB[8]-MPyVB,它能够产生可控的宏观机械响应。在光照下,U-CB[8]-MPyVB中金属有机轮烷链的梯状结构单元发生区域选择性固态[2 + 2]光二聚反应,并促进光触发的单晶到单晶(SCSC)转变,这甚至会导致单个棒状块状晶体的宏观光机械弯曲。制备具有固态光响应微观和宏观动态行为的基于轮烷的晶体材料有望成为光致动器器件,并将在光机械微器件和智能微型机器人等新兴领域产生影响。