Sorbonne Université, CNRS, Laboratoire de Chimie Physique-Matière et Rayonnement, LCPMR, ParisF-75005, France.
Institut Rud̵er Bošković, ZagrebHR-10000, Croatia.
J Am Chem Soc. 2022 Dec 7;144(48):21878-21886. doi: 10.1021/jacs.2c06296. Epub 2022 Nov 29.
The photochemically induced ring-opening isomerization reaction of 1,3-cyclohexadiene to 1,3,5-hexatriene is a textbook example of a pericyclic reaction and has been amply investigated with advanced spectroscopic techniques. The main open question has been the identification of the single reactive state which drives the process. The generally accepted description of the isomerization pathway starts with a valence excitation to the lowest lying bright state, followed by a passage through a conical intersection to the lowest lying doubly excited state, and finally a branching between either the return to the ground state of the cyclic molecule or the actual ring-opening reaction leading to the open-chain isomer. Here, in a joint experimental and computational effort, we demonstrate that the evolution of the excitation-deexcitation process is much more complex than that usually described. In particular, we show that an initially high-lying electronic state smoothly decreasing in energy along the reaction path plays a key role in the ring-opening reaction.
1,3-环己二烯的光致环开异构化反应是周环反应的典型范例,已经通过先进的光谱技术进行了充分的研究。主要的悬而未决的问题是确定驱动该过程的单一反应态。通常接受的异构化途径的描述从最低的亮态的价激发开始,接着通过穿过一个锥形交叉点到最低的双激发态,最后在要么回到环状分子的基态,要么是实际的开环反应导致开链异构体之间进行分支。在这里,通过联合实验和计算努力,我们证明激发-去激发过程的演化比通常描述的要复杂得多。特别是,我们表明,沿反应路径能量逐渐降低的初始高能态在开环反应中起着关键作用。