Hydrogen-fluorine exchange in the NaBH4–NaBF4 system is investigated with a range of experimental methods combined with DFT calculations and a possible mechanism for the reactions is proposed. Fluorine substitution is observed by in-situ synchrotron radiation powder X-ray diffraction (SR-PXD) as a new Rock salt type compound with idealized composition NaBF2H2 in the temperature range T = 200 to 215 °C. Combined use of solid-state 19F MAS NMR, FT-IR and DFT calculations supports the formation of a BF2H2− complex ion, reproducing the observation of a 19F chemical shift at 144.2 ppm, which is different from that of NaBF4 at 159.2 ppm, along with the new absorption bands observed in the IR spectra. After further heating, the fluorine substitute...
NaBH4, with a 10.6 wt % theoretical H2 capacity, is a promising hydrogen storage candidate material....
Hydrogen energy is an efficient and renewable clean energy source, and the key issue for its applica...
The physical properties and the hydrogen release of NaBH4–Mg(BH4)2 and NaBH4−Ca(BH4)2 composites are...
The solid-state solutions of NaHxF1-x (x = 1, 0.95, 0.85, 0.5) have been investigated to determine t...
Complex hydrides are promising hydrogen storage materials and have received significant attention du...
Hydrogen substitution by fluorine in the orthorhombic phase of LiBH4 has been investigated with quan...
The development of new practical hydrogen storage materials with high volumetric and gravimetric hyd...
Light metal borohydrides are considered as promising materials for solid state hydrogen storage. Bec...
The discovery of LiAlH4 and NaBH4 as hydride reducing agents has opened many doors the exploration o...
AbstractThe formation processes of sodium polyhydrofluorides at form NaF·nHF, where n = 2, 3, 4, are...
Copyright © 2020 American Chemical Society. Fluorine-substituted sodium hydride is investigated ...
One of the major challenges for fuel cells and the hydrogen economy is technology to store and relea...
The hydrogenation of NaF/9NaH + 5MgB<sub>2</sub> and NaF/2NaH + 1.5MgB<sub>2</sub> reactive hydride ...
Chemical reactions of hydrogen storage materials often involve mass transport through a bulk solid. ...
Liquid state 1H and 19F NMR experiments in the temperature range between 110 and 150 K have been per...
NaBH4, with a 10.6 wt % theoretical H2 capacity, is a promising hydrogen storage candidate material....
Hydrogen energy is an efficient and renewable clean energy source, and the key issue for its applica...
The physical properties and the hydrogen release of NaBH4–Mg(BH4)2 and NaBH4−Ca(BH4)2 composites are...
The solid-state solutions of NaHxF1-x (x = 1, 0.95, 0.85, 0.5) have been investigated to determine t...
Complex hydrides are promising hydrogen storage materials and have received significant attention du...
Hydrogen substitution by fluorine in the orthorhombic phase of LiBH4 has been investigated with quan...
The development of new practical hydrogen storage materials with high volumetric and gravimetric hyd...
Light metal borohydrides are considered as promising materials for solid state hydrogen storage. Bec...
The discovery of LiAlH4 and NaBH4 as hydride reducing agents has opened many doors the exploration o...
AbstractThe formation processes of sodium polyhydrofluorides at form NaF·nHF, where n = 2, 3, 4, are...
Copyright © 2020 American Chemical Society. Fluorine-substituted sodium hydride is investigated ...
One of the major challenges for fuel cells and the hydrogen economy is technology to store and relea...
The hydrogenation of NaF/9NaH + 5MgB<sub>2</sub> and NaF/2NaH + 1.5MgB<sub>2</sub> reactive hydride ...
Chemical reactions of hydrogen storage materials often involve mass transport through a bulk solid. ...
Liquid state 1H and 19F NMR experiments in the temperature range between 110 and 150 K have been per...
NaBH4, with a 10.6 wt % theoretical H2 capacity, is a promising hydrogen storage candidate material....
Hydrogen energy is an efficient and renewable clean energy source, and the key issue for its applica...
The physical properties and the hydrogen release of NaBH4–Mg(BH4)2 and NaBH4−Ca(BH4)2 composites are...