Novoderezhkin Vladimir I, Romero Elisabet, Prior Javier, van Grondelle Rienk
A. N. Belozersky Institute of Physico-Chemical Biology, Moscow State University, Leninskie Gory, 119992, Moscow, Russia.
Department of Biophysics, Faculty of Sciences, VU University Amsterdam, De Boelelaan 1081, 1081 HV Amsterdam, The Netherlands.
Phys Chem Chem Phys. 2017 Feb 15;19(7):5195-5208. doi: 10.1039/c6cp07308e.
The dynamics of charge separation in the photosystem II reaction center (PSII-RC) in the presence of intramolecular vibrations with their frequency matching the energy gap between the exciton state acting as the primary electron donor and the first charge-transfer (CT) state are investigated. A reduced PSII-RC 4-state model explicitly including a CT state is analyzed within Redfield relaxation theory in the multidimensional exciton-vibrational (vibronic) basis. This model is used to study coherent energy/electron transfers and their spectral signatures obtained by two-dimensional electronic spectroscopy (2DES). Modeling of the time-resolved 2D frequency maps obtained by wavelet analysis reveals the origins of the coherences which produce the observed oscillating features in 2DES and allows comparing the lifetimes of the coherences. The results suggest faster excitonic decoherence as compared with longer-lived vibronic oscillations. The emerging picture of the dynamics unravels the role of resonant vibrations in sustaining the effective energy conversion in the PSII-RC. We demonstrate that the mixing of the exciton and CT states promoted by a resonant vibrational quantum allows faster penetration of excitation energy into the CT with subsequent dynamic localization at the bottom of the CT potential induced by the remaining non-resonant nuclear modes. The degree of vibration-assisted mixing and, correspondingly, the rate of primary charge separation, increases significantly in the case of electron-vibrational resonance. The observed features illustrate the principles of quantum design of the photosynthetic unit. These principles are connected with the phenomenon of coherent mixing within vibronic eigenstates, increasing the effectiveness of charge separation not only upon coherent and impulsive laser excitation utilized in the 2DES experiment, but also under natural conditions under non-coherent non-impulsive solar light illumination.
研究了在存在分子内振动的情况下,光系统II反应中心(PSII-RC)中的电荷分离动力学,这些振动的频率与作为初级电子供体的激子态和第一电荷转移(CT)态之间的能隙相匹配。在多维激子 - 振动(振子)基矢下的雷德菲尔德弛豫理论框架内,分析了一个明确包含CT态的简化PSII-RC四态模型。该模型用于研究相干能量/电子转移及其通过二维电子光谱(2DES)获得的光谱特征。通过小波分析得到的时间分辨二维频率图的建模揭示了产生2DES中观察到的振荡特征的相干性的起源,并允许比较相干性的寿命。结果表明,与寿命较长的振子振荡相比,激子退相干更快。动力学的新图景揭示了共振振动在维持PSII-RC中有效能量转换方面的作用。我们证明,由共振振动量子促进的激子态和CT态的混合允许激发能量更快地渗透到CT态,随后在由其余非共振核模式诱导的CT势底部进行动态定位。在电子 - 振动共振的情况下,振动辅助混合的程度以及相应的初级电荷分离速率会显著增加。观察到的特征说明了光合单元的量子设计原理。这些原理与振子本征态内的相干混合现象相关,不仅在2DES实验中使用的相干和脉冲激光激发下,而且在自然条件下非相干非脉冲太阳光照射下,都提高了电荷分离的效率。