†Laboratory of Molecular Nanostructure and Nanotechnology, Institute of Chemistry, Beijing National Laboratory for Molecular Sciences, Beijing 100190, China.
§Hefei National Laboratory for Physical Sciences at the Microscale, Department of Chemical Physics, Synergetic Innovation Center of Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.
J Am Chem Soc. 2015 Jul 15;137(27):8769-74. doi: 10.1021/jacs.5b03612. Epub 2015 Jul 2.
Endohedral metallofullerenes (EMFs) have become an important class of molecular materials for optoelectronic applications. The performance of EMFs is known to be dependent on their symmetries and characters of the substituents, but the underlying electron dynamics remain unclear. Here we report a systematic study on several scandium EMFs and representative derivatives to examine the cage symmetry and substituent effects on their photoexcited electron dynamics using ultrafast transient absorption spectroscopy. Our attention is focused on the visible-light (530 nm as a demonstration) photoexcited electron dynamics, which is of broad interest to visible-light solar energy harvesting but is considered to be quite complicated as the visible-light photons would promote the system to a high-lying energy region where dense manifolds of electronic states locate. Our ultrafast spectroscopy study enables a full mapping of the photoinduced deactivation channels involved and reveals that the long-lived triplet exciton plays a decisive role in controlling the photoexcited electron dynamics under certain conditions. More importantly, it is found that the opening of the triplet channels is highly correlated to the fullerene cage symmetry as well as the electronic character of the substituents.
笼型金属富勒烯(EMFs)已成为光电应用中一类重要的分子材料。已知 EMFs 的性能取决于它们的对称性和取代基的性质,但电子动力学的基本原理仍不清楚。在这里,我们使用超快瞬态吸收光谱系统地研究了几种钪 EMFs 和代表性衍生物,以检查笼对称性和取代基对其光激发电子动力学的影响。我们关注的是可见光(以 530nm 为例)光激发电子动力学,这对于可见光太阳能收集具有广泛的兴趣,但由于可见光光子会将系统推向高能区域,其中密集的电子态位于电子态中,因此被认为相当复杂。我们的超快光谱研究能够全面描绘所涉及的光致离域通道,并揭示在某些条件下,长寿命三重态激子在控制光激发电子动力学中起着决定性的作用。更重要的是,发现三重态通道的开启与富勒烯笼对称性以及取代基的电子性质高度相关。