School of Chemistry, University of East Anglia , Norwich Research Park, Norwich NR4 7TJ, U.K.
Molecular Inorganic Chemistry, Stratingh Institute for Chemistry, University of Groningen , Nijenborgh 4, 9747AG Groningen, The Netherlands.
J Am Chem Soc. 2017 May 31;139(21):7408-7414. doi: 10.1021/jacs.7b03599. Epub 2017 May 22.
Photochemical isomerization in sterically crowded chiral alkenes is the driving force for molecular rotary motors in nanoscale machines. Here the excited-state dynamics and structural evolution of the prototypical light-driven rotary motor are followed on the ultrafast time scale by femtosecond stimulated Raman spectroscopy (FSRS) and transient absorption (TA). TA reveals a sub-100-fs blue shift and decay of the Franck-Condon bright state arising from relaxation along the reactive potential energy surface. The decay is accompanied by coherently excited vibrational dynamics which survive the excited-state structural evolution. The ultrafast Franck-Condon bright state relaxes to a dark excited state, which FSRS reveals to have a rich spectrum compared to the electronic ground state, with the most intense Raman-active modes shifted to significantly lower wavenumber. This is discussed in terms of a reduced bond order of the central bridging bond and overall weakening of bonds in the dark state, which is supported by electronic structure calculations. The observed evolution in the FSRS spectrum is assigned to vibrational cooling accompanied by partitioning of the dark state between the product isomer and the original ground state. Formation of the product isomer is observed in real time by FSRS. It is formed vibrationally hot and cools over several picoseconds, completing the characterization of the light-driven half of the photocycle.
在空间位阻较大的手性烯烃中,光致异构化是纳米机器中分子旋转马达的驱动力。在此,通过飞秒受激拉曼光谱(FSRS)和瞬态吸收(TA)在飞秒时间尺度上跟踪了原型光驱动旋转马达的激发态动力学和结构演化。TA 揭示了弗兰克-康登(Franck-Condon)亮态的亚 100fs 蓝移和衰减,这是由于沿反应势能面的弛豫引起的。衰减伴随着相干激发的振动动力学,这些动力学在激发态结构演化中得以存活。超快的 Franck-Condon 亮态弛豫到暗激发态,FSRS 揭示与电子基态相比,暗激发态具有丰富的光谱,最强烈的拉曼活性模式显著移至更低的波数。这可以根据中心桥键的键序降低和暗态中键的整体减弱来解释,这得到了电子结构计算的支持。FSRS 光谱中观察到的演化被分配给暗态的振动冷却,同时暗态在产物异构体和原始基态之间进行分配。通过 FSRS 实时观察到产物异构体的形成。它以振动加热的形式形成,并在数皮秒内冷却,完成了光驱动半光循环的特征描述。