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Femtosecond coherent transient infrared spectroscopy of reaction centers from Rhodobacter sphaeroides.

机译:飞秒相干瞬态红外光谱法研究球形红假单胞菌的反应中心。

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摘要

Protein and cofactor vibrational dynamics associated with photoexcitation and charge separation in the photosynthetic reaction center were investigated with femto-second (300-400 fs) time-resolved infrared (1560-1960 cm-1) spectroscopy. The experiments are in the coherent transient limit where the quantum uncertainty principle governs the evolution of the protein vibrational changes. No significant protein relaxation accompanies charge separation, although the electric field resulting from charge separation modifies the polypeptide carbonyl spectra. The potential energy surfaces of the "special pair" P and the photoexcited singlet state P* and environmental perturbations on them are similar as judged from coherence transfer measurements. The vibrational dephasing time of P* modes in this region is 600 fs. A subpicosecond transient at 1665 cm-1 was found to have the kinetics expected for a sequential electron transfer process. Kinetic signatures of all other transient intermediates, P, P*, and P+, participating in the primary steps of photosynthesis were identified in the difference infrared spectra.
机译:用飞秒(300-400 fs)时间分辨红外(1560-1960 cm-1)光谱研究了光合作用中心中与光激发和电荷分离相关的蛋白质和辅因子振动动力学。实验处于相干瞬态极限中,其中量子不确定性原理控制蛋白质振动变化的演变。尽管电荷分离产生的电场改变了多肽的羰基光谱,但是电荷分离没有明显的蛋白质弛豫。从相干转移测量中判断,“特殊对” P和光激发单重态P *的势能面以及它们的环境扰动相似。 P *模式在该区域的振动移相时间为600 fs。发现在1665 cm-1处的亚皮秒瞬变具有预期的顺序电子传输过程的动力学。在差异红外光谱中鉴定出了参与光合作用主要步骤的所有其他瞬时中间体P,P *和P +的动力学特征。

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