Complex hydrides for solid state hydrogen storage

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Hydrides for solid-state hydrogen storage are one of the future solutions - pollutant free - for the storage and the transport of energy. Among the candidates, LiBH4 was selected considering its high gravimetric hydrogen capacity (up to 13.6 wt.% H2). Its decomposition can be facilitated within the presence of the hydride MgH2. Thus, the hydride system MgH2-xLiBH4 (0x3.5) reactivated by high energy ball-milling, was studied regarding its microstructural properties and stability of the phases. The desorption reaction of hydrogen, with or without additives, shows the appearance of additional phases accompanying the principal reaction. Heat capacity measurements of LiBH4 revealed the presence of an abnormal behaviour before the polymorphous transition attributed to the increase of crystal defects in agreement with the existence of a hypo-stoichiometric domaine observed at higher temperatures. Vapour pressure measurements of LiBH4 showed that H2 is the major component of decomposition with minor species such as B2H6 and BH3. The thermodynamic properties of LiBH4 were critically assessed, gathering the new data, in the aim of modelling of reactions occurring in hydride mixtures.

Autorentext

He received his Ph.D. degree in 2011 at Grenoble Institute of Technology for his work on structural and thermodynamic properties of complex hydride compounds. He moved to the University of Picardie, in 2012 as a postdoctoral researcher to work on surface energy measurements of oxide materials for Li-ion battery applications.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783848401918
    • Sprache Englisch
    • Auflage Aufl.
    • Genre Chemie
    • Größe H220mm x B220mm
    • Jahr 2012
    • EAN 9783848401918
    • Format Kartonierter Einband (Kt)
    • ISBN 978-3-8484-0191-8
    • Titel Complex hydrides for solid state hydrogen storage
    • Autor Abdelouahab El Kharbachi
    • Untertitel A thermodynamic and structural approach
    • Herausgeber LAP Lambert Academic Publishing
    • Anzahl Seiten 204

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