English

Nuclear Quantum Effects Induce Metallization of Dense Solid Molecular Hydrogen

Materials Science 2017-10-27 v1 Chemical Physics Computational Physics

Abstract

We present an accurate computational study of the electronic structure and lattice dynamics of solid molecular hydrogen at high pressure. The band-gap energies of the C2/cC2/c, PcPc, and P63/mP6_3/m structures at pressures of 250, 300, and 350 GPa are calculated using the diffusion quantum Monte Carlo (DMC) method. The atomic configurations are obtained from ab-initio path-integral molecular dynamics (PIMD) simulations at 300 K and 300 GPa to investigate the impact of zero-point energy and temperature-induced motion of the protons including anharmonic effects. We find that finite temperature and nuclear quantum effects reduce the band-gaps substantially, leading to metallization of the C2/cC2/c and PcPc phases via band overlap; the effect on the band-gap of the P63/mP6_3/m structure is less pronounced. Our combined DMC-PIMD simulations predict that there are no excitonic or quasiparticle energy gaps for the C2/cC2/c and PcPc phases at 300 GPa and 300 K. Our results also indicate a strong correlation between the band-gap energy and vibron modes. This strong coupling induces a band-gap reduction of more than 2.46 eV in high-pressure solid molecular hydrogen. Comparing our DMC-PIMD with experimental results available, we conclude that none of the structures proposed is a good candidate for phases III and IV of solid hydrogen.

Keywords

Cite

@article{arxiv.1710.09703,
  title  = {Nuclear Quantum Effects Induce Metallization of Dense Solid Molecular Hydrogen},
  author = {Sam Azadi and Ranber Singh and T. D. Kühne},
  journal= {arXiv preprint arXiv:1710.09703},
  year   = {2017}
}

Comments

Accepted for publication in Journal of Computational Chemistry. arXiv admin note: text overlap with arXiv:1608.00754

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