Xing Dong, Glöcklhofer Florian, Plasser Felix
Department of Chemistry, Loughborough University Loughborough LE11 3TU UK
Institute of Applied Synthetic Chemistry, TU Wien Getreidemarkt 9/163 1060 Vienna Austria.
Chem Sci. 2024 Oct 2;15(43):17918-26. doi: 10.1039/d4sc04692g.
Excited state aromaticity (ESA) offers a fascinating route for driving photophysical and photochemical processes but is challenging to harness fully due to its inherent association with unstable antiaromatic ground states. Here, we propose to circumvent this problem the introduction of a new class of photophysical processes, the generation of ESA an excited-state intramolecular proton transfer. We select twelve candidate molecules based on the cyclobutadiene and pentalene scaffolds and investigate their ground and excited state properties using computation. The study highlights the feasibility of proton transfer induced ESA gain and shows that it gives rise to pronounced excited-state relaxation producing Stokes shifts in excess of 2 eV. The underlying electronic structure properties are analysed in terms of the orbitals involved as well as aromaticity descriptors illustrating the pronounced changes these molecules undergo upon both excitation and proton transfer. In summary, we believe that the present work will pave the way toward a new class of chromophores with maximal Stokes shifts and excited-state relaxation.
激发态芳香性(ESA)为驱动光物理和光化学过程提供了一条引人入胜的途径,但由于其与不稳定的反芳香基态的固有联系,要充分利用它具有挑战性。在此,我们提议通过引入一类新的光物理过程来规避这个问题,即通过激发态分子内质子转移产生ESA。我们基于环丁二烯和戊搭烯支架选择了12个候选分子,并通过计算研究了它们的基态和激发态性质。该研究突出了质子转移诱导ESA增益的可行性,并表明它会导致明显的激发态弛豫,产生超过2 eV的斯托克斯位移。从参与的轨道以及芳香性描述符的角度分析了潜在的电子结构性质,这些描述符说明了这些分子在激发和质子转移时所经历的显著变化。总之,我们相信目前的工作将为具有最大斯托克斯位移和激发态弛豫的新型发色团铺平道路。