University of Oregon, Eugene, Oregon, OR-97403, USA.
Chemistry. 2020 Aug 12;26(45):10205-10209. doi: 10.1002/chem.202001389. Epub 2020 Jul 13.
Molecules and materials that demonstrate large amplitude responses to minor changes in their local environment play an important role in the development of new forms of nanotechnology. Molecular daisy chains are a type of a mechanically interlocked molecule that are particularly sensitive to such changes in which, in the presence of certain stimuli, the molecular linkage enables muscle-like movement between a reduced-length contracted form and an increased-length expanded form. To date, all reported syntheses of molecular daisy chains are accomplished via passive-template methods, resulting in a majority of structures being switchable only through the addition of an exogenous stimuli such as metal ions or changes in pH. Here, we describe a new approach to these structural motifs that exploits a multi-component active-metal template synthesis to mechanically interlock two pi-rich nanohoop macrocycles into a molecular daisy chain that undergoes large conformational changes using thermal energy.
在新型纳米技术的发展中,对局部环境的微小变化表现出大幅响应的分子和材料起着重要作用。分子雏菊花链是一种机械互锁分子,对这种变化特别敏感,在某些刺激存在的情况下,分子连接使分子在缩短的收缩形式和伸长的扩张形式之间进行类似肌肉的运动。迄今为止,所有报道的分子雏菊花链的合成都是通过被动模板方法完成的,导致大多数结构只能通过添加外部刺激(如金属离子或 pH 值变化)来实现开关。在这里,我们描述了一种新的方法来构建这些结构基序,该方法利用多组分活性金属模板合成将两个富含 pi 的纳米环大环化合物机械互锁成一个分子雏菊花链,该分子雏菊花链使用热能进行大的构象变化。