化学
质子耦合电子转移
催化作用
电子转移
质子
光化学
氢化物
反应机理
金属
有机化学
量子力学
物理
作者
Tianfei Liu,Meiyuan Guo,Andreas Orthaber,Reiner Lomoth,Marcus Lundberg,Sascha Ott,Leif Hammarström
出处
期刊:Nature Chemistry
[Nature Portfolio]
日期:2018-07-12
卷期号:10 (8): 881-887
被引量:125
标识
DOI:10.1038/s41557-018-0076-x
摘要
Metal hydrides are key intermediates in catalytic proton reduction and dihydrogen oxidation. There is currently much interest in appending proton relays near the metal centre to accelerate catalysis by proton-coupled electron transfer (PCET). However, the elementary PCET steps and the role of the proton relays are still poorly understood, and direct kinetic studies of these processes are scarce. Here, we report a series of tungsten hydride complexes as proxy catalysts, with covalently attached pyridyl groups as proton acceptors. The rate of their PCET reaction with external oxidants is increased by several orders of magnitude compared to that of the analogous systems with external pyridine on account of facilitated proton transfer. Moreover, the mechanism of the PCET reaction is altered by the appended bases. A unique feature is that the reaction can be tuned to follow three distinct PCET mechanisms—electron-first, proton-first or a concerted reaction—with very different sensitivities to oxidant and base strength. Such knowledge is crucial for rational improvements of solar fuel catalysts. A series of tungsten hydride complexes have been synthesized to mimic a proton-coupled electron transfer (PCET) step undergone by metal–hydride intermediates during solar fuel catalysis. It is shown that, by incorporating proton-accepting bases into the second coordination sphere, their PCET oxidation mechanism changes and its rate increases by several orders of magnitude.
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