Mai Sebastian, Menger Maximilian F S J, Marazzi Marco, Stolba Dario L, Monari Antonio, González Leticia
1Institute of Theoretical Chemistry, Faculty of Chemistry, University of Vienna, Währinger Str. 17, 1090 Vienna, Austria.
2Present Address: Photonics Institute, Vienna University of Technology, Gußhausstr. 27-29, 1040 Vienna, Austria.
Theor Chem Acc. 2020;139(3):65. doi: 10.1007/s00214-020-2555-6. Epub 2020 Mar 17.
We present a computational study of sub-picosecond nonadiabatic dynamics in a rhenium complex coupled electronically to a tryptophan (Trp) side chain of azurin, a prototypical protein used in the study of electron transfer in proteins. To gain a comprehensive understanding of the photoinduced processes in this system, we have carried out vertical excitation calculations at the TDDFT level of theory as well as nonadiabatic dynamics simulations using the surface hopping including arbitrary couplings (SHARC) method coupled to potential energy surfaces represented with a linear vibronic coupling model. The results show that the initial photoexcitation populates both singlet metal-to-ligand charge transfer (MLCT) and singlet charge-separated (CS) states, where in the latter an electron was transferred from the Trp amino acid to the complex. Subsequently, a complex mechanism of simultaneous intersystem crossing and electron transfer leads to the sub-picosecond population of triplet MLCT and triplet CS states. These results confirm the assignment of the sub-ps time constants of previous experimental studies and constitute the first computational evidence for the ultrafast formation of the charge-separated states in Re-sensitized azurin.
我们展示了一项关于铼配合物中亚皮秒非绝热动力学的计算研究,该铼配合物与天青蛋白的色氨酸(Trp)侧链发生电子耦合,天青蛋白是用于蛋白质电子转移研究的典型蛋白质。为全面了解该系统中的光诱导过程,我们在含时密度泛函理论(TDDFT)水平上进行了垂直激发计算,并使用包含任意耦合的表面跳跃(SHARC)方法结合由线性振子耦合模型表示的势能面进行了非绝热动力学模拟。结果表明,初始光激发使单线态金属到配体电荷转移(MLCT)态和单线态电荷分离(CS)态均被激发,在后者中,一个电子从色氨酸转移到配合物上。随后,同时发生的系间窜越和电子转移的复杂机制导致三线态MLCT和三线态CS态在亚皮秒时间内被激发。这些结果证实了先前实验研究中亚皮秒时间常数的归属,并构成了铼敏化天青蛋白中电荷分离态超快形成的首个计算证据。