School of Chemistry, University of Bristol, Bristol, UK BS8 1TS.
Phys Chem Chem Phys. 2010 Feb 14;12(6):1218-38. doi: 10.1039/b921706a. Epub 2009 Dec 23.
The last few years have seen a surge in interest (both theoretical and experimental) in the photochemistry of heteroaromatic molecules (e.g. azoles, phenols), which has served to highlight the importance of dissociative excited states formed by electron promotion to sigma* molecular orbitals. Such excited states--which, for brevity, are termed pi sigma* states in this Perspective article--may be populated by direct photo-excitation (though the transition cross-sections are intrinsically small), or indirectly, by non-adiabatic coupling from an optically 'bright' excited state (e.g. an excited state resulting from pi* <--pi excitation). The analogous pi sigma* excited states in prototypical hydride molecules like H(2)O and NH(3) have long been recognised. They have served as test-beds for developing concepts like Rydbergisation, conical intersections (CIs) between potential energy surfaces, and for investigating the ways in which non-adiabatic couplings at such CIs influence the eventual photofragmentation dynamics. This Perspective article seeks to highlight the continuity of behaviour revealed by the earlier small molecule studies and by the more recent studies of heteroaromatic systems, and to illustrate the photochemical importance of pi sigma* excited states in many broad families of molecules. Furthermore, the dynamical influence of such excited states is not restricted to closed shell species; the Article concludes with a brief consideration of the consequences of populating sigma* orbitals in free radical species, in molecular cations, and in dissociative electron attachment processes.
过去几年中,人们对杂芳族分子(如唑类、酚类)的光化学产生了浓厚的兴趣(包括理论和实验方面),这突显了由电子促进到 sigma分子轨道形成的离解激发态的重要性。这些激发态——为简洁起见,在本文中称为 pi sigma 态——可以通过直接光激发(尽管跃迁截面本质上很小),或者通过非绝热耦合从光“亮”激发态(例如,来自 pi* <--pi 激发的激发态)间接填充。在 H(2)O 和 NH(3)等典型氢化物分子中的类似 pi sigma* 激发态早已为人所知。它们一直是发展概念的测试平台,例如里德伯化、势能面之间的锥形交叉(CI),以及研究此类 CI 处的非绝热耦合如何影响最终的光解动力学。本文旨在强调早期小分子研究和最近杂芳族系统研究所揭示的行为连续性,并说明 pi sigma* 激发态在许多广泛的分子家族中的光化学重要性。此外,这种激发态的动力学影响不仅限于闭壳物种;本文最后简要考虑了在自由基物种、分子阳离子和离解电子附加过程中填充 sigma*轨道的后果。