Department of Theoretical Physics, Faculty of Physics, Vilnius University, Sauletekio 9-III, 10222 Vilnius, Lithuania.
Department of Physics, University of Michigan, Ann Arbor, Michigan 48109, USA.
J Chem Phys. 2017 Sep 21;147(11):115102. doi: 10.1063/1.4997527.
Photosystem II (PSII) is the only biological system capable of splitting water to molecular oxygen. Its reaction center (RC) is responsible for the primary charge separation that drives the water oxidation reaction. In this work, we revisit the spectroscopic properties of the PSII RC using the complex time-dependent Redfield (ctR) theory for optical lineshapes [A. Gelzinis et al., J. Chem. Phys. 142, 154107 (2015)]. We obtain the PSII RC model parameters (site energies, disorder, and reorganization energies) from the fits of several spectra and then further validate the model by calculating additional independent spectra. We obtain good to excellent agreement between theory and calculations. We find that overall our model is similar to some of the previous asymmetric exciton models of the PSII RC. On the other hand, our model displays differences from previous work based on the modified Redfield theory. We extend the ctR theory to describe the Stark spectrum and use its fit to obtain the parameters of a single charge transfer state included in our model. Our results suggest that ChlPheo is most likely the primary charge transfer state, but that the Stark spectrum of the PSII RC is probably also influenced by other states.
光系统 II(PSII)是唯一能够将水分解为分子氧的生物系统。其反应中心(RC)负责驱动水氧化反应的初始电荷分离。在这项工作中,我们使用复杂的时变 Redfield(ctR)理论来重新研究 PSII RC 的光谱性质,该理论适用于光学线宽[A. Gelzinis 等人,J. Chem. Phys. 142, 154107 (2015)]。我们从几个光谱的拟合中获得 PSII RC 模型参数(位点能、无序和重组能),然后通过计算其他独立光谱进一步验证模型。我们在理论和计算之间获得了良好到优秀的一致性。我们发现,总的来说,我们的模型与 PSII RC 的一些先前不对称激子模型相似。另一方面,我们的模型与基于修正 Redfield 理论的先前工作存在差异。我们将 ctR 理论扩展到描述 Stark 光谱,并使用其拟合来获得我们模型中包含的单个电荷转移态的参数。我们的结果表明,ChlPheo 很可能是主要的电荷转移态,但 PSII RC 的 Stark 光谱可能也受到其他态的影响。