SYNERGISTIC EFFECT OF LiBH4 + MgH2 AS A POTENTIAL REVERSIBLE HIGH CAPACITY HYDROGEN STORAGE MATERIAL

被引:0
|
作者
Price, T. E. C. [1 ]
Grant, D. M. [1 ]
Walker, G. S. [1 ]
机构
[1] Univ Nottingham, Sch Mech Mat & Mfg Engn, Nottingham NG7 2RD, England
来源
MATERIALS INNOVATIONS IN AN EMERGING HYDROGEN ECONOMY | 2009年 / 202卷
关键词
HYDROGEN; SYSTEMS; STORAGE; LI;
D O I
暂无
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The destabilisation of high capacity complex hydrides through the formation of an intermediary compound of lower enthalpy, allows system thermodynamics to be tailored. The destabilisation of lithium tetrahydridoborate with magnesium hydride is reported here, of a non-stoichiometric 0.3:1 molar ratio which gives a capacity of 9.8 wt.% with magnesium hydride, providing a higher capacity than can be achieved using metal or oxide additions. In-situ neutron diffraction (ND) was performed on the LiBD(4) : MgD(2) 0.3:1 system under dynamic vacuum and sealed vessel conditions, this allowed alternative reaction pathways to be elucidated for these different conditions. ND on heating to 730 degrees C under dynamic vacuum showed initial catalysis of LiBD(4) by Mg, this caused partial decomposition to form LiD, B, and D(2). Magnesium was then shown to destabilize the LiD through formation of dual alloys; Mg(0.816)Li(0.184) and Mg(0.70)Li(0.30). ND performed on a sample under sealed conditions did not show decomposition products of LiBD(4) until cooling from liquid phase after heating to 730 degrees C. This suggests a limiting pressure of deuterium (estimated at 30 bar) evolved during MgD(2) decomposition prevented the sample decomposing. Only after heating to temperatures above the melting point of Mg was the destabilization of LiBD(4) observed. We therefore postulate that this system progresses through one of two mechanisms according to pressure regime, and therefore under a controlled pressure the system may offer alternative destabilization mechanisms to those previously reported.
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页码:97 / 104
页数:8
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