DFT Study of Planar Boron Sheets: A New Template for Hydrogen Storage
arXiv:0910.0929 · doi:10.1021/jp9077079
Abstract
We study the hydrogen storage properties of planar boron sheets and compare them to those of graphene. The binding of molecular hydrogen to the boron sheet (0.05 eV) is stronger than that to graphene. We find that dispersion of alkali metal (AM = Li, Na, and K) atoms onto the boron sheet markedly increases hydrogen binding energies and storage capacities. The unique structure of the boron sheet presents a template for creating a stable lattice of strongly bonded metal atoms with a large nearest neighbor distance. In contrast, AM atoms dispersed on graphene tend to cluster to form a bulk metal. In particular the boron-Li system is found to be a good candidate for hydrogen storage purposes. In the fully loaded case this compound can contain up to 10.7 wt. % molecular hydrogen with an average binding energy of 0.15 eV/H2.
19 pages, 7 figures, and 3 tables
References in corpus (6)
- Electric Field Effect in Atomically Thin Carbon Films
- Novel Precursors for Boron Nanotubes: The Competition of Two-Center and Three-Center Bonding in Boron Sheets
- Ab initio study on the effects of transition metal doping of Mg2NiH4
- Ab initio study of magnesium alanate, Mg(AlH4)2
- Tunable Hydrogen Storage in Magnesium - Transition Metal Compounds
- Hydrogen Storage by Polylithiated Molecules and Nanostructures