School of Chemistry, University of East Anglia, Norwich Research Park, Norwich NR4 7TJ, U.K.
Stratingh Institute for Chemistry, University of Groningen, Nijenborgh 4, 9747AG Groningen, The Netherlands.
J Phys Chem Lett. 2021 Apr 8;12(13):3367-3372. doi: 10.1021/acs.jpclett.1c00710. Epub 2021 Mar 30.
The design of unidirectional photomolecular motors demands a critical understanding of an ultrafast photochemical isomerization. An intermediate dark excited state mediates the reaction via a conical intersection (CI) with the ground state, but a correlation between molecular structure and photoisomerization efficiency has remained elusive. Here femtosecond stimulated Raman spectroscopy captures vibrational spectra of the dark state in a set of molecular motors bearing different substituents. A direct correlation between isomerization quantum yield, dark state lifetime, and excited state vibrational spectrum is found. Electron withdrawing substituents lead to activity in lower frequency modes, which we correlate with a pyramidalization distortion at the ethylenic axle occurring within 100 fs. This structure is not formed with an electron donating substituent, where the axle retains double bond character. Further structural reorganization is observed and assigned to excited state reorganization and charge redistribution on the sub-picosecond time scale. The correlation of the dark state structure with photoconversion performance suggests guidelines for developing new more efficient motor derivatives.
单向光分子马达的设计需要对超快光化学反应异构化有深入的了解。一个中间暗激发态通过与基态的锥形交叉(CI)来介导反应,但分子结构与光异构化效率之间的相关性仍然难以捉摸。这里,飞秒受激拉曼光谱捕获了一系列带有不同取代基的分子马达中暗态的振动光谱。发现光异构化量子产率、暗态寿命和激发态振动光谱之间存在直接相关性。吸电子取代基导致在较低频率模式下的活性,我们将其与在 100 fs 内发生的在乙烯基轴上的金字塔化扭曲相关联。具有给电子取代基时不会形成这种结构,其中轴保留双键特征。进一步观察到结构的重新排列,并将其分配给亚皮秒时间尺度上的激发态重组和电荷重新分布。暗态结构与光转换性能的相关性表明了开发新的更有效的马达衍生物的指导原则。