Efficient electron transfer across hydrogen bond interfaces by proton-coupled and -uncoupled pathways

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Abstract

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 Mo2 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 ∼ 1010 s−1, 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.

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Cheng, T., Shen, D. X., Meng, M., Mallick, S., Cao, L., Patmore, N. J., … Liu, C. Y. (2019). Efficient electron transfer across hydrogen bond interfaces by proton-coupled and -uncoupled pathways. Nature Communications, 10(1). https://doi.org/10.1038/s41467-019-09392-7

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