Max Born Institut für Nichtlineare Optik und Kurzzeitspektroskopie, Max Born Strasse 2A, 12489, Berlin, Germany.
Department of Physics, Stockholm University, AlbaNova University Center, 106 91, Stockholm, Sweden.
Angew Chem Int Ed Engl. 2022 Jul 4;61(27):e202200709. doi: 10.1002/anie.202200709. Epub 2022 Apr 27.
Photoacids show a strong increase in acidity in the first electronic excited state, enabling real-time studies of proton transfer in acid-base reactions, proton transport in energy storage devices and biomolecular sensor protein systems. Several explanations have been proposed for what determines photoacidity, ranging from variations in solvation free energy to changes in electronic structure occurring along the four stages of the Förster cycle. Here we use picosecond nitrogen K-edge spectroscopy to monitor the electronic structure changes of the proton donating group in a protonated aromatic amine photoacid in solution upon photoexcitation and subsequent proton transfer dynamics. Probing core-to-valence transitions locally at the amine functional group and with orbital specificity, we clearly reveal pronounced electronic structure, dipole moment and energetic changes on the conjugate photobase side. This result paves the way for a detailed electronic structural characterization of the photoacidity phenomenon.
光酸在第一电子激发态下显示出酸度的强烈增加,使质子转移在酸碱反应、储能设备中的质子传输和生物分子传感蛋白系统中的实时研究成为可能。对于决定光酸度的因素,已经提出了几种解释,从溶剂化自由能的变化到福斯特循环的四个阶段中电子结构的变化。在这里,我们使用皮秒氮 K 边谱学来监测溶液中质子化芳族胺光酸中质子供体基团在光激发和随后的质子转移动力学过程中的电子结构变化。通过局部探测胺官能团的芯到价跃迁,并具有轨道特异性,我们清楚地揭示了共轭光碱侧明显的电子结构、偶极矩和能量变化。这一结果为详细的光酸现象的电子结构特征化铺平了道路。