Molecular hydrogen in graphite: A path-integral simulation
arXiv:1108.2399 · doi:10.1103/PhysRevB.82.174117
Abstract
Molecular hydrogen in the bulk of graphite has been studied by path-integral molecular dynamics simulations. Finite-temperature properties of H_2 molecules adsorbed between graphite layers were analyzed in the temperature range from 300 to 900 K. The interatomic interactions were modeled by a tight-binding potential fitted to density-functional calculations. In the lowest-energy position, an H_2 molecule is found to be disposed parallel to the sheets plane. At finite temperatures, the molecule explores other orientations, but its rotation is partially hindered by the adjacent graphite layers. Vibrational frequencies were obtained from a linear-response approach, based on correlations of atom displacements. For the stretching vibration of the molecule, we find at 300 K a frequency omega_s = 3916 cm-1, more than 100 cm-1 lower than the frequency corresponding to an isolated H_2 molecule. Isotope effects have been studied by considering also deuterium and tritium molecules. For D_2 in graphite we obtained omega_s = 2816 cm-1}, i.e., an isotopic ratio omega_s(H) / omega_s(D) = 1.39.
10 pages, 7 figures
References in corpus (8)
- Magnetism in Graphene Induced by Single-Atom Defects
- Hydrogen on graphene: Electronic structure, total energy, structural distortions, and magnetism from first-principles calculations
- Understanding adsorption of hydrogen atoms on graphene
- Ab-initio calculation of the effect of stress on the chemical activity of graphene
- Vibrational properties and diffusion of hydrogen on graphene
- Diffusion of hydrogen in graphite: A molecular dynamics simulation
- Diffusion of muonium and hydrogen in diamond
- Hydrogen and muonium in diamond: A path-integral molecular dynamics simulation
Cited by in corpus (8)
- Simulation and understanding of quantum crystals
- Quantum effects in graphene monolayers: Path-integral simulations
- Anharmonic effects in the optical and acoustic bending modes of graphene
- Atomic displacements in quantum crystals
- Phonon dispersion in two-dimensional solids from atomic probability distributions
- Nuclear quantum effects in graphene bilayers
- Thermal control of graphene morphology: a signature of its intrinsic surface tension
- Hydrogen dynamics on defective monolayer graphene