Tracking Aqueous Proton Transfer by Two-Dimensional Infrared Spectroscopy and ab Initio Molecular Dynamics Simulations
Author(s) -
Rongfeng Yuan,
Joseph A. Napoli,
Chang Yan,
Ondřej Maršálek,
Thomas E. Markland,
M. D. Fayer
Publication year - 2019
Publication title -
acs central science
Language(s) - English
Resource type - Journals
eISSN - 2374-7951
pISSN - 2374-7943
DOI - 10.1021/acscentsci.9b00447
Subject(s) - proton , hydronium , chemical physics , chemistry , proton transport , molecular dynamics , infrared spectroscopy , two dimensional infrared spectroscopy , spectroscopy , ab initio , hydrogen bond , ab initio quantum chemistry methods , molecule , computational chemistry , physics , organic chemistry , quantum mechanics
Proton transfer in water is ubiquitous and a critical elementary event that, via proton hopping between water molecules, enables protons to diffuse much faster than other ions. The problem of the anomalous nature of proton transport in water was first identified by Grotthuss over 200 years ago. In spite of a vast amount of modern research effort, there are still many unanswered questions about proton transport in water. An experimental determination of the proton hopping time has remained elusive due to its ultrafast nature and the lack of direct experimental observables. Here, we use two-dimensional infrared spectroscopy to extract the chemical exchange rates between hydronium and water in acid solutions using a vibrational probe, methyl thiocyanate. Ab initio molecular dynamics (AIMD) simulations demonstrate that the chemical exchange is dominated by proton hopping. The observed experimental and simulated acid concentration dependence then allow us to extrapolate the measured single step proton hopping time to the dilute limit, which, within error, gives the same value as inferred from measurements of the proton mobility and NMR line width analysis. In addition to obtaining the proton hopping time in the dilute limit from direct measurements and AIMD simulations, the results indicate that proton hopping in dilute acid solutions is induced by the concerted multi-water molecule hydrogen bond rearrangement that occurs in pure water. This proposition on the dynamics that drive proton hopping is confirmed by a combination of experimental results from the literature.
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