Towards viable H$_2$ storage in Ca decorated low-dimensional materials with insights from reference quantum Monte Carlo
Yasmine S. Al-Hamdani, Dario Alf\`e, Andrea Zen

TL;DR
This study uses advanced quantum Monte Carlo methods to evaluate calcium-decorated low-dimensional materials for hydrogen storage, finding promising configurations that meet energy requirements for practical applications.
Contribution
It provides reliable binding energy predictions for Ca and H$_2$ in specific nanostructures, guiding the design of effective hydrogen storage materials.
Findings
H$_2$ adsorption energy is improved by Ca decoration strategies.
H$_2$ binding energies are within the viable storage window.
Ca is stably anchored inside carbon nanotubes and on boron doped graphene.
Abstract
Hydrogen technology is set to be a key energy alternative for mitigating pollution and reducing CO emissions. However, the current storage mechanism of hydrogen molecules in carbon fibre tanks detracts from the fuel economy of hydrogen in mobile applications, necessitating the development of alternative storage mechanisms. Adsorbing hydrogen in its molecular form (H) at typical operating conditions of proton exchange membranes can potentially meet storage requirements. However, H is the smallest molecule with only two electrons and therefore it has very limited propensity to physisorb in a material within the binding energy window of to eV that is suitable for storage. Calcium atom decorators on graphene have previously shown promise for tunable H binding, but the system is thermodynamically unstable toward the formation of calcium hydride. Moreover, the…
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