High H2 uptake by alkali-doped carbon nanotubes under ambient pressure and moderate temperatures
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Summary
The high hydrogen-uptake capacity of these systems may be derived from the special open-edged, layered structure of the carbon nanotubes made from methane, as well as the catalytic effect of alkali metals.
- Type
- article
- Published
- 1999-07-02
- Cited by
- 1,009
- References
- 5
- OpenAlex
- https://openalex.org/W2011448647
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:2319457
Keywords
Alkali metal, Carbon nanotube, Sorption, Lithium (medication), Desorption
References
- Growth of carbon nanotubes by catalytic decomposition of CH4 or CO on a NiMgO catalyst
- Storage of hydrogen in single-walled carbon nanotubes
- Theoretical study of lithium graphite. I. Band structure, density of states, and Fermi-surface properties
- Hydrogen adsorption and cohesive energy of single-walled carbon nanotubes
- Hydrogen Storage in Graphite Nanofibers
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- Hydrogen adsorption in carbonaceous materials–: How to determine the storage capacity accurately
- Kinetics of Sorption and Release of Hydrogen by Nanoporous Carbon
- Microporous materials for hydrogen storage
- Hydrogen desorption and absorption for activated magnesium hydride
- Effect of external electric field on hydrogen adsorption over activated carbon separated by dielectric materials
- Atomic Modeling of Carbon-Based Nanostructures as a Tool for Developing New Materials and Technologies
- Nuclear Micro-Engineering Using Tritium
- Synthesis, characterisation and decomposition properties of manganese-based borohydrides for hydrogen storage
- Effects of structure and surface properties on carbon nanotubes’ hydrogen storage characteristics
- State and prospects of creating new generation microsatellites: new materials, nanotechnology and architecture
- Low potential amperometric determination of ascorbic acid at a single-wall carbon nanotubes -dihexadecyl hydrogen phosphate composite film modified electrode
- Synthesis of carbon nanotubes over nickel–iron catalysts supported on alumina under controlled conditions
- Si20H20 cluster modified by small organic molecules and lithium atoms for high-capacity hydrogen storage
- Surfactant Assisted Dispersion of Single-Walled Carbon Nanotubes in Polyvinylpyrrolidone Solutions
- Transition metal Ti coated porous fullerene C24B24: Potential material for hydrogen storage
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