Laboratorium für Organische Chemie, Department of Chemistry and Applied Biosciences, ETH Zürich, Wolfgang Pauli Strasse 10, 8093 Zürich, Switzerland.
Org Biomol Chem. 2013 Feb 28;11(8):1306-17. doi: 10.1039/c2ob26954f.
Bullvalene is an organic molecule that spontaneously undergoes Cope rearrangements, resulting in a reconfiguration of its carbon framework. During our study of oligosubstituted bullvalenes, which are structurally dynamic shapeshifting molecules, we found that we could isolate one metastable isomer from the interconverting population of 1680 constitutional isomers (852 structures if enantiomeric pairs are counted once). The preferential formation and unexpected stability of this isomer led to many questions, which we have addressed in this report. (1) What is its structure? (2) How many rearrangements are required to form this isomer from the initial bullvalene structure? (3) Why is it the preferred isomer? (4) What is the role of the substituents in its energetic preference? Our answers required synthesis, HPLC isolation, NMR characterizations, network construction and analysis, and computational (DFT) studies. The results of these efforts revealed the remarkable interconversion network of bullvalene rearrangements. The formation of this metastable isomer is preferred by both thermodynamic and kinetic factors and the ester substituent amplifies the energy difference between various structural isomers of oligosubstituted bullvalenes. The shapeshifting nature of oligosubstituted bullvalene is a useful and unusual property that has many potential applications. Insights into their rearrangements, energy landscape and substituent effect will be important knowledge for the development of these molecules towards materials, sensors and biologically active compounds.
Bullvalene 是一种有机分子,会自动发生 Cope 重排,导致其碳骨架重新配置。在研究寡取代 bullvalenes 时,我们发现可以从 1680 个构象异构体(如果将对映异构体算作一次,则有 852 种结构)的互变群体中分离出一种亚稳异构体。这种异构体的优先形成和出人意料的稳定性引发了许多问题,我们在本报告中对此进行了探讨。(1)它的结构是什么?(2)从初始 bullvalene 结构形成这种异构体需要多少次重排?(3)为什么它是首选异构体?(4)取代基在其能量偏好中的作用是什么?我们的答案需要通过合成、HPLC 分离、NMR 表征、网络构建和分析以及计算(DFT)研究来获得。这些努力的结果揭示了 bullvalene 重排的惊人互变网络。这种亚稳异构体的形成受热力学和动力学因素的共同影响,酯取代基放大了寡取代 bullvalenes 的各种结构异构体之间的能量差异。寡取代 bullvalene 的形状变化性质是一种有用且不寻常的特性,具有许多潜在的应用。深入了解它们的重排、能量景观和取代基效应对于这些分子在材料、传感器和生物活性化合物方面的发展将是重要的知识。