Hydration of NH in Water: Bifurcated Hydrogen Bonding Structures and Fast Rotational Dynamics
arXiv:2009.04727 · doi:10.1103/PhysRevLett.125.106001
Abstract
Understanding the hydration and diffusion of ions in water at the molecular level is a topic of widespread importance. The ammonium ion (NH) is an exemplar system that has received attention for decades because of its complex hydration structure and relevance in industry. Here we report a study of the hydration and the rotational diffusion of NH in water using ab initio molecular dynamics simulations and quantum Monte Carlo calculations. We find that the hydration structure of NH features bifurcated hydrogen bonds, which leads to a rotational mechanism involving the simultaneous switching of a pair of bifurcated hydrogen bonds. The proposed hydration structure and rotational mechanism are supported by existing experimental measurements, and they also help to rationalize the measured fast rotation of NH in water. This study highlights how subtle changes in the electronic structure of hydrogen bonds impacts the hydration structure, which consequently affects the dynamics of ions and molecules in hydrogen bonded systems.
References in corpus (10)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- Crystal Nucleation in Liquids: Open Questions and Future Challenges in Molecular Dynamics Simulations
- Ab initio theory and modeling of water
- Continuum variational and diffusion quantum Monte Carlo calculations
- Excess Electron Localization in Solvated DNA Bases
- Shape and Energy Consistent Pseudopotentials for Correlated Electron systems
- Evidence for Stable Square Ice from Quantum Monte Carlo
- Distinct metallization and atomization transitions in dense liquid hydrogen
- Diffusion Quantum Monte Carlo Study of Martensitic Phase Transition: The Case of Phosphorene