Lee Christopher K, Feng Yuanning, Tajik Mohammad, Violi Jake P, Donald William A, Stoddart J Fraser, Kim Dong Jun
School of Chemistry, University of New South Wales, Sydney, NSW 2052, Australia.
Department of Chemistry and Biochemistry, The University of Oklahoma, 101 Stephenson Parkway, Norman, Oklahoma 73019, United States.
J Am Chem Soc. 2024 Oct 2;146(39):27109-27116. doi: 10.1021/jacs.4c09406. Epub 2024 Sep 21.
Stereoisomerism, stemming from the spatial orientation of components in molecular structures, plays a decisive role in nature. While the unconventional bonding found in mechanically interlocked molecules gives rise to unique expressions of stereochemistry, the exploration of their stereoisomers is still in its infancy. Sequence isomerism, characterized by variations in the ordering of mechanically interlocked components in catenanes and rotaxanes, mirrors the sequence variations found in biological macromolecules. Herein, we report the use of artificial molecular pumps for the precise and simple production of sequentially isomeric hetero[3]rotaxanes. Utilizing redox-driven pumping cassettes with different rings, we have synthesized two hetero[3]rotaxane isomers in high isolated yields from two [2]rotaxanes. This research represents a significant advance in sequential molecular assembly, paving the way for the development of sophisticated, functionalized, mechanically interlocked materials.
立体异构源于分子结构中各组分的空间取向,在自然界中起着决定性作用。虽然机械互锁分子中发现的非常规键合产生了独特的立体化学表现,但对其立体异构体的探索仍处于起步阶段。序列异构以索烃和轮烷中机械互锁组分排列顺序的变化为特征,反映了生物大分子中发现的序列变化。在此,我们报告了使用人工分子泵精确且简单地制备序列异构的杂[3]轮烷。利用带有不同环的氧化还原驱动泵送盒,我们从两种[2]轮烷中以高分离产率合成了两种杂[3]轮烷异构体。这项研究代表了序列分子组装方面的重大进展,为开发复杂的、功能化的机械互锁材料铺平了道路。