The microscopic origin of anomalous properties of ice relies on the strong quantum anharmonic regime of atomic vibrations
arXiv:2107.03302 · doi:10.1063/5.0062689
Abstract
Water ice is a unique material presenting intriguing physical properties, like negative thermal expansion and anomalous volume isotope effect (VIE). They arise from the interplay between weak hydrogen bonds and nuclear quantum fluctuations, making theoretical calculations challenging. Here, we employ the stochastic self-consistent harmonic approximation (SSCHA) to investigate how thermal and quantum fluctuations affect the physical properties of ice XI ab initio. Regarding the anomalous VIE, our work reveals that quantum effects on hydrogen are so strong to be in a nonlinear regime: when progressively increasing the mass of hydrogen from protium to infinity (classical limit), the volume firstly expands and then contracts, with a maximum slightly above the mass of tritium. We observe an anharmonic renormalization of about 10% in the bending and stretching phonon frequencies probed in IR and Raman experiments. For the first time, we report an accurate comparison of the low energy phonon dispersion with the experimental data, possible only thanks to high-level accuracy in the electronic correlation and nuclear quantum and thermal fluctuations, paving the way for the study of thermal transport in ice from first principles and the simulation of ice under pressure.
References in corpus (7)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Ice structures, patterns, and processes: A view across the ice-fields
- The Stochastic Self-Consistent Harmonic Approximation: Calculating Vibrational Properties of Materials with Full Quantum and Anharmonic Effects
- First-principles calculations of phonon frequencies, lifetimes and spectral functions from weak to strong anharmonicity: the example of palladium hydrides
- Role of dipolar correlations in the IR spectra of water and ice
- Quasi-harmonic approximation of thermodynamic properties of ice Ih, II, and III
- Time-Dependent Self Consistent Harmonic Approximation: Anharmonic nuclear quantum dynamics and time correlation functions
Cited by in corpus (5)
- Wigner Gaussian dynamics: simulating the anharmonic and quantum ionic motion
- Anharmonic phonon behavior via irreducible derivatives: self-consistent perturbation theory and molecular dynamics
- Beyond Gaussian fluctuations of quantum anharmonic nuclei
- Broad-Range Directional Detection of Light Dark Matter in Cryogenic Ice
- Rényi entropy of quantum anharmonic chain at non-zero temperature