Title of article :
Vapor pressure measurements of Mg(BH4)2 using Knudsen torsion effusion thermo graphic method
Author/Authors :
Nforbi، نويسنده , , L.-N.N. and Talekar، نويسنده , , A. and Lau، نويسنده , , K.H. and Chellapa، نويسنده , , R. C. Chien، نويسنده , , W.-M. and Chandra، نويسنده , , D. and Hagemann، نويسنده , , H. and Filinchuk، نويسنده , , Y. and Zhao، نويسنده , , J.-C. and Levchenko، نويسنده , , Andre، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2014
Abstract :
The vapor pressure and molecular weight of effusing vapors of α, β, and amorphous Mg(BH4)2 were determined by Torsion-effusion gravimetric method, under dynamic vacuum. A Cahn balance in the system yielded the rate of the weight loss. Molecular weights measured revealed if the effusion was congruent or there was disproportionation. The vaporization behavior of crystalline Mg(BH4)2, was measured up to 533 K at pressures of ∼10−5 torr. It was found that Mg(BH4)2 disproportionates to form predominantly H2 gas (∼95%) with a small amount of Mg(BH4)2 (∼5%) in the gas phase. The combined average molecular weight measured is 4.16 g/mol. The equations for vapor pressures for crystalline Mg(BH4)2 are given by: log PTotal (bar) = 9.2303 − 7286.2/T, log P Mg ( BH 4 ) 2 ( bar ) = 8.2515 − 7286.2 / T , and log P H 2 ( bar ) = 9.1821 − 7286.2 / T . The partial pressures of the gaseous species were determined as P Mg ( BH 4 ) 2 ( g ) / P T = 0.105 and P H 2 ( g ) / P T = 0.895 . Enthalpies of vaporization for the effusing gases were calculated to be ΔH = +558.0 kJ/mol H2 and ΔH = +135 kJ/mol Mg(BH4)2. The standard Gibbs free energy changes, ΔG°(kJ/mol), for the complete decomposition reaction (Mg(BH4)2(s) → Mg(s) + 2B(s) + 4H2(g)), sublimation reaction (Mg(BH4)2(s) → Mg(BH4)2(g)) and the disproportionation reaction for Mg(BH4)2 are reported in this paper. The decomposition pathway of amorphous Mg(BH4)2 was also carried out between 388.2 K and 712.8 K showing multistep decomposition of a-Mg(BH4)2 Different reaction products were obtained depending on the method used in the vaporization experiment. The behavior of the amorphous Mg(BH4)2(s) is very different from those for the two crystalline phases (α and β). The vapor pressure behavior and thermodynamics of vaporization of different phases of Mg(BH4)2 are presented.
Keywords :
Torsion effusion vapor pressure measurements , Vaporization thermodynamics , Hydrogen desorption under dynamic vacuum , Mg(BH4)2
Journal title :
International Journal of Hydrogen Energy
Journal title :
International Journal of Hydrogen Energy