Kumpulainen Tatu, Rosspeintner Arnulf, Dereka Bogdan, Vauthey Eric
Department of Physical Chemistry, University of Geneva , 30 Quai Ernest Ansermet, Geneva, Switzerland.
J Phys Chem Lett. 2017 Sep 21;8(18):4516-4521. doi: 10.1021/acs.jpclett.7b01956. Epub 2017 Sep 8.
A thorough understanding of the microscopic mechanism of excited-state proton transfer (ESPT) and the influence of the solvent environment on its dynamics are of great fundamental interest. We present here a detailed investigation of an ESPT to solvent (DMSO) using time-resolved broadband fluorescence and transient absorption spectroscopies. All excited-state species are resolved spectrally and kinetically using a global target analysis based on the two-step Eigen-Weller model. Reversibility of the initial short-range proton transfer producing excited contact ion pairs (CIP*) is observed unambiguously in fluorescence and must be explicitly considered to obtain the individual rate constants. Close inspection of the early dynamics suggests that the relative populations of the protonated form (ROH*) and CIP* are governed by solvent relaxation that influences the relative energies of the excited states. This constitutes a breakdown of the Eigen-Weller model, although the overall agreement between the data and the analysis using classical rate equations is excellent.
深入理解激发态质子转移(ESPT)的微观机制以及溶剂环境对其动力学的影响具有重大的基础研究意义。我们在此展示了一项使用时间分辨宽带荧光和瞬态吸收光谱对ESPT至溶剂(二甲基亚砜)进行的详细研究。基于两步本征 - 韦勒模型,通过全局目标分析在光谱和动力学上解析了所有激发态物种。在荧光中明确观察到了产生激发态接触离子对(CIP*)的初始短程质子转移的可逆性,并且为了获得各个速率常数必须明确考虑这一点。对早期动力学的仔细研究表明,质子化形式(ROH*)和CIP*的相对丰度受影响激发态相对能量的溶剂弛豫支配。尽管数据与使用经典速率方程的分析之间总体一致性良好,但这构成了对本征 - 韦勒模型的一种破坏。