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Marcus-type driving force correlations reveal the mechanism of proton-coupled electron transfer for phenols and Ru(bpy)33+ in water at low pH

机译:马库斯型驱动力的相关性揭示了质子耦合电子在低pH条件下水中苯酚和Ru(bpy)3 3+的转移机理

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摘要

Proton-coupled electron transfer (PCET) from tyrosine and other phenol derivatives in water is an important elementary reaction in chemistry and biology. We examined PCET between a series of phenol derivatives and photogenerated [Ru(bpy)3]3+ in low pH (≤4) water using the laser flash-quench technique. From an analysis of the kinetic data using a Marcus-type free energy relationship, we propose that our model system follows a stepwise electron transfer-proton transfer (ETPT) pathway with a pH independent rate constant at low pH in water. This is in contrast to the concerted or proton-first (PTET) mechanisms that often dominate at higher pH and/or with buffers as primary proton acceptors. The stepwise mechanism remains competitive despite a significant change in the pKa and redox potential of the phenols which leads to a span of rate constants from 1 × 105 to 2 × 109 M–1 s–1. These results support our previous studies which revealed separate mechanistic regions for PCET reactions and also assigned phenol oxidation by [Ru(bpy)3]3+ at low pH to a stepwise PCET mechanism.
机译:水中酪氨酸和其他苯酚衍生物的质子偶联电子转移(PCET)是化学和生物学中重要的基本反应。我们使用激光快速淬灭技术研究了一系列酚衍生物与低pH(≤4)水中光生的[Ru(bpy)3] 3 + 之间的PCET。通过使用Marcus型自由能关系对动力学数据进行分析,我们建议我们的模型系统遵循逐步电子转移-质子转移(ETPT)途径,在水中低pH值下具有pH无关的速率常数。这与通常在较高pH和/或以缓冲液作为主要质子受体上占优势的协同或质子优先(PTET)机制相反。尽管酚的pKa和氧化还原电位发生了显着变化,但逐步速率机制仍然具有竞争性,这导致速率常数范围从1×10 5 到2×10 9 M –1 s –1 。这些结果支持了我们以前的研究,这些研究揭示了PCET反应的独立机理区域,并且还通过[Ru(bpy)3] 3 + 在低pH下将酚氧化分配为逐步PCET机制。

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