Laboratory of Soft Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.
University of Chinese Academy of Sciences, Beijing 100049, China.
J Phys Chem Lett. 2023 May 11;14(18):4151-4157. doi: 10.1021/acs.jpclett.3c00697. Epub 2023 Apr 27.
The electronic propensity rule, which suggests a proportional relationship between radiative and nonradiative electronic coupling elements in fluorescent molecules, has been postulated for some time. Despite its potential significance, the rule has not been rigorously derived and experimentally validated. In this work, we draw upon the theoretical framework established by Schuurmans et al. for the relation between the radiative and nonradiative electronic coupling elements of the rare earth metal in the crystal at low temperature and extend their approach to the fluorescent molecules under external electric field perturbation at a fixed energy gap and varied temperatures, with a further single-electron approximation (Schuurmans, M. F. H., et al. , , 131-155). We obtained a linear relation between the radiative decay rates and nonradiative decay rates for internal conversion, which is verified by experimental data from two types of dextran-dye complexes and the light-harvesting antenna complex in photosynthetic bacteria.
电子倾向定则,即荧光分子中辐射和非辐射电子耦合元素之间存在比例关系,已经被提出了一段时间。尽管它具有潜在的重要性,但该定则尚未得到严格推导和实验验证。在这项工作中,我们借鉴了 Schuurmans 等人在低温下晶体中稀土金属的辐射和非辐射电子耦合元素之间关系的理论框架,并将他们的方法扩展到在固定能隙和变化温度下受外部电场干扰的荧光分子中,并进一步进行单电子近似(Schuurmans, M. F. H., et al. ,, 131-155)。我们得到了内转换的辐射衰减率和非辐射衰减率之间的线性关系,这一关系得到了两种葡聚糖-染料复合物和光合细菌中的光捕获天线复合物的实验数据的验证。