Lithiumborohydride (LiBH4) contains 18.5 wt % hydrogen and exhibits a structural phase transition (orthorhombic→ hexagonal) at 381 K, which is associated with a large increase in hydrogen and lithium mobility in the solid. Confining metal hydrides in a nanoporous matrix may change the hydrogen desorption kinetics and reversibility, and influence phase equilibria. The hydrogen mobility in nanoconfined LiBH4 was studied using inelastic and quasielastic neutron scattering. Confinement in nanoporous carbon leads to a greater anion mobility and a reduced activation energy of 8 kJ/mol at room temperature as compared to 17.3 kJ/mol in bulk LiBH4. In the nanoconfined phase, the mobility resembles that of the high-temperature bulk phase, and no dist...
Lithium borohydride (LiBH4) has been attracting extensive attention as an exemplary high‐capacity co...
The reversible hydrogen capacity of LiBH4 was improved by a combination of Ni addition, nanosizing a...
Intercalation and de-intercalation of lithium into graphene layers is a well-established phenomenon ...
Lithiumborohydride (LiBH4) contains 18.5 wt % hydrogen and exhibits a structural phase transition (o...
LiBH4 has been discussed as a promising hydrogen storage material and as a solid-state electrolyte i...
LiBH<sub>4</sub> is a promising material for hydrogen storage and as a solid-state electrolyte for L...
LiBH4 is a promising material for hydrogen storage and as a solid-state electrolyte for Li ion batte...
LiBH4 is a promising material for hydrogen storage and as a solid-state electrolyte for Li ion batte...
Particle size and particle–framework interactions have profound effects on the kinetics, reaction pa...
Nanoconfinement and the use of catalysts are promising strategies to enhance the reversibility of hy...
The increasing demand for high capacity yet safe storage of renewable energy calls for the developme...
LiBH4 nanoparticles confined in nanoporous carbon materials show improved hydrogen storage propertie...
Lithium amide–borohydrides Li[BH4]1–x[NH2]x possess liquid-like Li superionic conductivity at nearly...
The hydrogen storage performance of reactive hydride composite Mg(NH$_2$)$_2$+2LiH can be significan...
Lithium borohydride (LiBH4) exhibits poor hydrogen storage reversibility because of phase separation...
Lithium borohydride (LiBH4) has been attracting extensive attention as an exemplary high‐capacity co...
The reversible hydrogen capacity of LiBH4 was improved by a combination of Ni addition, nanosizing a...
Intercalation and de-intercalation of lithium into graphene layers is a well-established phenomenon ...
Lithiumborohydride (LiBH4) contains 18.5 wt % hydrogen and exhibits a structural phase transition (o...
LiBH4 has been discussed as a promising hydrogen storage material and as a solid-state electrolyte i...
LiBH<sub>4</sub> is a promising material for hydrogen storage and as a solid-state electrolyte for L...
LiBH4 is a promising material for hydrogen storage and as a solid-state electrolyte for Li ion batte...
LiBH4 is a promising material for hydrogen storage and as a solid-state electrolyte for Li ion batte...
Particle size and particle–framework interactions have profound effects on the kinetics, reaction pa...
Nanoconfinement and the use of catalysts are promising strategies to enhance the reversibility of hy...
The increasing demand for high capacity yet safe storage of renewable energy calls for the developme...
LiBH4 nanoparticles confined in nanoporous carbon materials show improved hydrogen storage propertie...
Lithium amide–borohydrides Li[BH4]1–x[NH2]x possess liquid-like Li superionic conductivity at nearly...
The hydrogen storage performance of reactive hydride composite Mg(NH$_2$)$_2$+2LiH can be significan...
Lithium borohydride (LiBH4) exhibits poor hydrogen storage reversibility because of phase separation...
Lithium borohydride (LiBH4) has been attracting extensive attention as an exemplary high‐capacity co...
The reversible hydrogen capacity of LiBH4 was improved by a combination of Ni addition, nanosizing a...
Intercalation and de-intercalation of lithium into graphene layers is a well-established phenomenon ...