JOURNAL ARTICLE

Calcium-decorated carbon nanotubes for high-capacity hydrogen storage: First-principles calculations

Hoonkyung LeeJisoon IhmMarvin L. CohenSteven G. Louie

Year: 2009 Journal:   Physical Review B Vol: 80 (11)   Publisher: American Physical Society

Abstract

Using first-principles calculations, we perform a search for high-capacity hydrogen storage media based on individually dispersed calcium atoms on doped or defective carbon nanotubes. We find that up to six ${\text{H}}_{2}$ molecules can bind to a Ca atom each with a desirable binding energy of $\ensuremath{\sim}0.2\text{ }\text{eV}/{\text{H}}_{2}$. The hybridization of the empty $\text{Ca}\text{ }3d$ orbitals with the ${\text{H}}_{2}$ $\ensuremath{\sigma}$ orbitals contributes to the ${\text{H}}_{2}$ binding, and Ca clustering is suppressed by preferential binding of Ca atoms to doped boron and defect sites dispersed on carbon nanotubes. We also show that individual Ca-decorated $B$-doped CNTs with a concentration of $\ensuremath{\sim}6\text{ }\text{at.}\text{ }%$ $B$ doping can reach the gravimetric capacity of $\ensuremath{\sim}5$ wt. % hydrogen.

Keywords:
Binding energy Hydrogen storage Carbon nanotube Materials science Orbital hybridisation Gravimetric analysis Atomic orbital Hydrogen Doping Carbon fibers Crystallography Atom (system on chip) Atomic physics Physics Nanotechnology Molecule Molecular orbital Molecular orbital theory Chemistry Electron Quantum mechanics Computer science

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176
Cited By
6.07
FWCI (Field Weighted Citation Impact)
33
Refs
0.97
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Citation History

Topics

Hydrogen Storage and Materials
Physical Sciences →  Materials Science →  Materials Chemistry
Advancements in Battery Materials
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
Advanced Battery Materials and Technologies
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
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