Zhu Kelong, Vukotic V Nicholas, Loeb Stephen J
School of Chemistry and Chemical Engineering, Sun Yat-Sen University, Guangzhou, 510275, P. R. China.
Department of Chemistry and Biochemistry, University of Windsor, Windsor, Ontario, N9B 3P4, Canada.
Chem Asian J. 2016 Nov 22;11(22):3258-3266. doi: 10.1002/asia.201601179. Epub 2016 Oct 13.
For the purpose of developing higher level mechanically interlocked molecules (MIMs), such as molecular switches and machines, a new rotaxane system was designed in which both the 1,2-bis(pyridinium)ethane and benzimidazolium recognition templating motifs were combined. These two very different recognition sites were successfully incorporated into [2]rotaxane and [3]rotaxane molecular shuttles which were fully characterized by H NMR, 2D EXSY, single-crystal X-ray diffraction and VT NMR analysis. By utilizing benzimidazolium as both a recognition site and stoppering group it was possible to create not only an acid/base switchable [2]rotaxane molecular shuttle (energy barrier 20.9 kcal⋅mol ) but also a [3]rotaxane molecular shuttle that displays unique dynamic behavior involving the simultaneous motion of two macrocyclic wheels on a single dumbbell. This study provides new insights into the design of switchable molecular shuttles. Due to the unique properties of benzimidazoles, such as fluorescence and metal coordination, this new type of molecular shuttle may find further applications in developing functional molecular machines and materials.
为了开发更高层次的机械互锁分子(MIMs),如分子开关和分子机器,设计了一种新的轮烷体系,其中1,2 - 双(吡啶鎓)乙烷和苯并咪唑鎓识别模板基序相结合。这两个截然不同的识别位点成功地整合到[2]轮烷和[3]轮烷分子穿梭体中,通过1H NMR、二维EXSY、单晶X射线衍射和变温NMR分析对其进行了全面表征。通过将苯并咪唑鎓既用作识别位点又用作封端基团,不仅可以创建一个酸碱可切换的[2]轮烷分子穿梭体(能垒为20.9 kcal·mol),还可以创建一个[3]轮烷分子穿梭体,该穿梭体表现出独特的动态行为,涉及两个大环轮在单个哑铃上的同时运动。这项研究为可切换分子穿梭体的设计提供了新的见解。由于苯并咪唑的独特性质,如荧光和金属配位,这种新型分子穿梭体可能在开发功能性分子机器和材料方面有进一步的应用。