Dang Li-Long, Zheng Jie, Zhang Ju-Zhong, Chen Tian, Chai Yin-Hang, Fu Hong-Ru, Aznarez Francisco, Liu Shui-Ren, Li Dong-Sheng, Ma Lu-Fang
College of Chemistry and Chemical Engineering, Luoyang Normal University, Henan Province Function-Oriented Porous Materials Key Laboratory, Luoyang, 471934, P. R. China.
College of materials and Chemical Engineering, China Three Gorges University, Yichang, 443002, P. R. China.
Angew Chem Int Ed Engl. 2024 Aug 5;63(32):e202406552. doi: 10.1002/anie.202406552. Epub 2024 Jul 8.
Triply interlocked [2]catenane complexes featuring two identical, mechanically interlocked units are extraordinarily rare chemical compounds, whose properties and applications remain open to detailed studies. Herein, we introduce the rational design of a new ligand precursor, L1, suitable for the synthesis of six triply interlocked [2]catenanes by coordination-driven self-assembly. The interlocked compounds can be reversibly converted into the corresponding simple triangular prism metallacage by addition of HO or DMF solvents to their CHOH solutions, thereby demonstrating the importance of π⋅⋅⋅π stacking and hydrogen bonding interactions in the formation of triply interlocked [2]catenanes. Moreover, extensive studies have been conducted to assess the remarkable photothermal conversion performance. Complex 6 a, exhibiting outstanding photothermal conversion performance (conversion efficiency in solution : 31.82 %), is used to prepare novel photoresponsive elastomer in combination with thermally activated liquid crystal elastomer. The resultant material displays robust response to near-infrared (NIR) laser and the capability of completely reforming the shape and reversible actuation, paving the way for the application of half-sandwich organometallic units in photo-responsive smart materials.
具有两个相同机械互锁单元的三重互锁[2]索烃配合物是极其罕见的化合物,其性质和应用仍有待深入研究。在此,我们介绍了一种新型配体前体L1的合理设计,它适用于通过配位驱动的自组装合成六种三重互锁[2]索烃。通过向其CHOH溶液中加入HO或DMF溶剂,互锁化合物可可逆地转化为相应的简单三棱柱金属笼,从而证明了π⋅⋅⋅π堆积和氢键相互作用在三重互锁[2]索烃形成中的重要性。此外,还进行了广泛的研究以评估其卓越的光热转换性能。表现出出色光热转换性能(溶液中的转换效率:31.82%)的配合物6 a与热活化液晶弹性体结合用于制备新型光响应弹性体。所得材料对近红外(NIR)激光表现出强烈响应,并具有完全重塑形状和可逆驱动的能力,为半夹心有机金属单元在光响应智能材料中的应用铺平了道路。