Towards a Predictive First-Principles Description of Solid Molecular Hydrogen with Density-Functional Theory
arXiv:1303.6673 · doi:10.1103/PhysRevB.87.184107
Abstract
We examine the influence of the main approximations employed in density-functional theory descriptions of the solid phase of molecular hydrogen near dissociation. We consider the importance of nuclear quantum effects on equilibrium properties and find that they strongly influence intramolecular properties, such as bond fluctuations and stability. We demonstrate that the combination of both thermal and quantum effects make a drastic change to the predicted optical properties of the molecular solid, suggesting a limited value to dynamical, e.g., finite-temperature, predictions based on classical ions and static crystals. We also consider the influence of the chosen exchange--correlation density functional on the predicted properties of hydrogen, in particular, the pressure dependence of the band gap and the zero-point energy. Finally, we use our simulations to make an assessment of the accuracy of typically employed approximations to the calculation of the Gibbs free energy of the solid, namely the quasi-harmonic approximation for solids. We find that, while the approximation is capable of producing free energies with an accuracy of ~10 meV, this is not enough to make reliable predictions of the phase diagram of hydrogen from first-principles due to the small free energy differences seen between several potential structures for the solid; direct free energy calculations for quantum protons are required in order to make definite predictions.
References in corpus (9)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- A Higher-Accuracy van der Waals Density Functional
- Accelerating the convergence of path integral dynamics with a generalized Langevin equation
- Nuclear Quantum Effects and Nonlocal Exchange-Correlation Functionals Applied to Liquid Hydrogen at High Pressure
- Density functional theory study of phase IV of solid hydrogen
- Room-Temperature Structures of Solid Hydrogen at High Pressures
- Bonding, structures, and band gap closure of hydrogen at high pressures
- Strong Isotopic Effect in Phase II of Dense Solid Hydrogen and Deuterium
- Classical and quantum ordering of protons in cold solid hydrogen under megabar pressures
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