Decoding the spectroscopic features and timescales of aqueous proton defects
arXiv:1709.05740 · doi:10.1063/1.5023704
Abstract
Acid solutions exhibit a variety of complex structural and dynamical features arising from the presence of multiple interacting reactive proton defects and counterions. However, disentangling the transient structural motifs of proton defects in the water hydrogen bond network and the mechanisms for their interconversion remains a formidable challenge. Here, we use simulations treating the quantum nature of both the electrons and nuclei to show how the experimentally observed spectroscopic features and relaxation timescales can be elucidated using a physically transparent coordinate that encodes the overall asymmetry of the solvation environment of the proton defect. We demonstrate that this coordinate can be used both to discriminate the extremities of the features observed in the linear vibrational spectrum and to explain the molecular motions that give rise to the interconversion timescales observed in recent nonlinear experiments. This analysis provides a unified condensed-phase picture of proton structure and dynamics that, at its extrema, encompasses proton sharing and spectroscopic features resembling the limiting Eigen [HO(HO)] and Zundel [H(HO)] gas-phase structures, while also describing the rich variety of interconverting environments in the liquid phase.
8 page manuscript (6 figures) with 8 page supplementary information (9 figures)
References in corpus (5)
- Canonical sampling through velocity-rescaling
- An Efficient and Accurate Car-Parrinello-like Approach to Born-Oppenheimer Molecular Dynamics
- Efficient stochastic thermostatting of path integral molecular dynamics
- How to remove the spurious resonances from ring polymer molecular dynamics
- The Interplay of Structure and Dynamics in the Raman Spectrum of Liquid Water over the Full Frequency and Temperature Range
Cited by in corpus (11)
- Nuclear quantum effects enter the mainstream
- Correlated Dynamics in Aqueous Proton Diffusion
- Elucidating the proton transport pathways in liquid imidazole with first-principles molecular dynamics
- AENET-LAMMPS and AENET-TINKER: Interfaces for Accurate and Efficient Molecular Dynamics Simulations with Machine Learning Potentials
- Accurate diffusion coefficients of the excess proton and hydroxide in water via extensive ab initio simulations with different schemes
- Developing machine-learned potentials to simultaneously capture the dynamics of excess protons and hydroxide ions in classical and path integral simulations
- ZundEig: The Structure of the Proton in Liquid Water From Unsupervised Learning
- Structural and Dynamic Properties of Solvated Hydroxide and Hydronium Ions in Water from Ab Initio Modeling
- Proton-transfer spectroscopy beyond the normal-mode scenario
- Characterizing and contrasting structural proton transport mechanisms in azole hydrogen bond networks using ab initio molecular dynamics
- Spectral signatures of excess-proton waiting and transfer-path dynamics in aqueous hydrochloric acid solutions