Department of Chemistry, Jinan University, 601 Huang-Pu Avenue West, 510632, Guangzhou, China.
Department of Chemical Sciences, University of Huddersfield, Queensgate, Huddersfield, HD1 3DH, UK.
Nat Commun. 2019 Apr 4;10(1):1531. doi: 10.1038/s41467-019-09392-7.
Thermal electron transfer through hydrogen bonds remains largely unexplored. Here we report the study of electron transfer through amide-amide hydrogen bonded interfaces in mixed-valence complexes with covalently bonded Mo units as the electron donor and acceptor. The rate constants for electron transfer through the dual hydrogen bonds across a distance of 12.5 Å are on the order of ∼ 10 s, as determined by optical analysis based on Marcus-Hush theory and simulation of ν(NH) vibrational band broadening, with the electron transfer efficiencies comparable to that of π conjugated bridges. This work demonstrates that electron transfer across a hydrogen bond may proceed via the known proton-coupled pathway, as well as an overlooked proton-uncoupled pathway that does not involve proton transfer. A mechanistic switch between the two pathways can be achieved by manipulation of the strengths of electronic coupling and hydrogen bonding. The knowledge of the non-proton coupled pathway has shed light on charge and energy transport in biological systems.
氢键介导的热电子转移过程在很大程度上仍未被探索。在这里,我们报道了通过酰胺-酰胺氢键键合界面在具有共价键合 Mo 单元作为电子供体和受体的混合价态配合物中进行电子转移的研究。通过基于马库斯-休斯理论的光学分析和 ν(NH)振动带展宽的模拟,确定电子通过距离为 12.5 Å 的双重氢键的转移速率常数约为 10 s -1 ,电子转移效率可与π共轭桥相媲美。这项工作表明,氢键之间的电子转移可能通过已知的质子耦合途径以及被忽视的不涉及质子转移的质子非耦合途径进行。通过操纵电子耦合和氢键的强度,可以在两种途径之间实现机制转换。非质子耦合途径的知识揭示了生物体系中电荷和能量输运的机制。