基于Mg-N-H和$(\mathrm{V}_{0.9}\text{Ti}_{0.1})-\mathrm{N}-\mathrm{H}$的薄膜储氢材料结构和吸收性能的比较研究

O. Lyubchenko, Yu. O. Marchenko, O. Kalchenko, Olena Solopikhina
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引用次数: 0

摘要

纳米晶体和纳米孔结构已被确定为燃料电池系统中很有前途的储氢固体材料。有限的晶粒尺寸和分支晶界系统为氢的扩散和积累提供了有利条件。此外,纳米孔结构具有良好的重量性能。本研究报道了纳米晶Mg-N-H和纳米孔$\ \左(\mathbf{V}_{0.9} \mathbf{T}_{0.1}\右)-\mathbf{N}-\mathbf{H}$薄膜结构对大量氢的积累和释放。对吸氢和解吸氢过程中的结构变化进行了比较。研究揭示了所研究薄膜的电阻与所含氢量之间的关系。结果表明,纳米多孔膜$(\ mathm {V}_{0.9} \text{Ti}_{0.1})-\ mathm {N}-\ mathm {H}$具有比纳米晶Mg-N-H膜更好的动力学性能,而其重量和热力学性能基本相似。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Comparative Study on the Structure and Absorption Properties of Thin-Film Hydrogen Storage Materials Based on Mg-N-H and $(\mathrm{V}_{0.9}\text{Ti}_{0.1})-\mathrm{N}-\mathrm{H}$
Nanocrystalline and nanoporous structures have been identified as a promising hydrogen storage solid material for fuel cell systems. Limited grain sizes and a branched system of grain boundaries are providing favorable conditions for acceleration and facilitation of the hydrogen diffusion and accumulation. In addition, the nanoporous structures have good gravimetric properties. This study reports on the accumulation and release of the large amounts of hydrogen by nanocrystalline Mg-N-H and nanoporous $\left(\mathbf{V}_{0.9} \mathbf{T i}_{0.1}\right)-\mathbf{N}-\mathbf{H}$ thin-film structures. A comparison of the structural changes during the hydrogen absorption and desorption has been carried out. The research revealed the relationship between the electrical resistance of investigated films and the amount of the hydrogen contained in them. It is shown that nano-porous $(\mathrm{V}_{0.9} \text{Ti}_{0.1})-\mathrm{N}-\mathrm{H}$ films have better kinetic properties than nanocrystalline Mg-N-H films, while their gravimetric and thermodynamic properties are broadly similar.
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