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A Review of Recent Advances on the Effects of Microstructural Refinement and Nano-Catalytic Additives on the Hydrogen Storage Properties of Metal and Complex Hydrides

机译:微结构细化和纳米催化添加剂对金属和复合氢化物的储氢性能影响的最新研究进展

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The recent advances on the effects of microstructural refinement and various nano-catalytic additives on the hydrogen storage properties of metal and complex hydrides obtained in the last few years in the allied laboratories at the University of Waterloo (Canada) and Military University of Technology (Warsaw, Poland) are critically reviewed in this paper. The research results indicate that microstructural refinement (particle and grain size) induced by ball milling influences quite modestly the hydrogen storage properties of simple metal and complex metal hydrides. On the other hand, the addition of nanometric elemental metals acting as potent catalysts and/or metal halide catalytic precursors brings about profound improvements in the hydrogen absorption/desorption kinetics for simple metal and complex metal hydrides alike. In general, catalytic precursors react with the hydride matrix forming a metal salt and free nanometric or amorphous elemental metals/intermetallics which, in turn, act catalytically. However, these catalysts change only kinetic properties i.e. the hydrogen absorption/desorption rate but they do not change thermodynamics (e.g., enthalpy change of hydrogen sorption reactions). It is shown that a complex metal hydride, LiAlH4, after high energy ball milling with a nanometric Ni metal catalyst and/or MnCl2 catalytic precursor, is able to desorb relatively large quantities of hydrogen at RT, 40 and 80 °C. This kind of behavior is very encouraging for the future development of solid state hydrogen systems.
机译:最近几年在滑铁卢大学(加拿大)和军事技术大学(华沙)的联合实验室中获得的微结构细化和各种纳米催化添加剂对金属和复合氢化物的储氢性能的最新进展,波兰)在本文中进行了严格审查。研究结果表明,球磨引起的微观结构细化(颗粒和晶粒尺寸)对简单金属和复杂金属氢化物的储氢性能影响不大。另一方面,添加用作有效催化剂和/或金属卤化物催化前体的纳米元素金属对简单金属和复杂金属氢化物的氢吸收/解吸动力学产生了深远的改善。通常,催化前体与氢化物基体反应形成金属盐和游离的纳米或非晶态元素金属/金属间化合物,它们又起催化作用。然而,这些催化剂仅改变动力学性质,即氢吸收/解吸速率,但不改变热力学(例如,氢吸附反应的焓变)。结果表明,采用纳米镍金属催化剂和/或MnCl 2 催化前体进行高能球磨后,复合金属氢化物LiAlH 4 能够相对解吸。在RT,40和80°C下有大量氢气。这种行为对于固态氢系统的未来发展非常令人鼓舞。

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