Transition metal-based materials and their catalytic influence on MgH2 hydrogen storage: A review

Oluwashina Philips Gbenebor, Abimbola Patricia Idowu Popoola
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Abstract

The dependence on fossil fuels for energy has culminated in its gradual depletion and this has generated the need to seek alternative source that will be environmentally friendly and sustainable. Hydrogen stands to be promising in this regard as energy carrier which has been proven to be efficient. Magnesium hydride (MgH2) can be used in storing hydrogen because of its availability, light weight and low cost. In this review, monoatomic, alloy, intermetallic and composite forms of Ti, Ni, V, Mo, Fe, Cr, Co, Zr and Nb as additives on MgH2 are discussed. Through ball milling, additive reacts with MgH2 to form compounds including TiH2, Mg2Ni, Mg2NiH4, V2O, VH2, MoSe, Mg2FeH6, NbH and Nb2O5which remain stable after certain de/hydrogenation cycles. Some monoatomic transition metals remain unreacted even after de/hydrogenation cycles. These formed compounds, including stable monoatomic transition metals, impart their catalytic effects by creating diffusion channels for hydrogen via weakening Mg - H bond strength. This reduces hydrogen de/sorption temperatures, activation energies and in turn, hastens hydrogen desorption kinetics of MgH2. Hydrogen storage output of MgH2/transition metal-based materials depend on additive type, ratio of MgH2/additive, ball milling time, ball –to combining materials ratio and de/hydrogenation cycle. There is a need for more investigations to be carried out on nanostructured binary and ternary transition metal-based materials as additives to enhance the hydrogen storage performance of MgH2. In addition, the already established compounds (listed above) formed after ball milling or dehydrogenation can be processed and directly doped into MgH2.
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过渡金属基材料及其对MgH2储氢的催化作用研究进展
对矿物燃料的能源依赖已达到顶点,使其逐渐枯竭,因此需要寻求对环境无害和可持续的替代能源。氢作为一种高效的能源载体,在这方面很有前途。氢化镁(MgH2)具有易得、重量轻、成本低等优点,可用于储氢。本文综述了MgH2表面添加剂Ti、Ni、V、Mo、Fe、Cr、Co、Zr和Nb的单原子、合金、金属间化合物和复合形式。通过球磨,添加剂与MgH2反应生成TiH2、Mg2Ni、Mg2NiH4、V2O、VH2、MoSe、Mg2FeH6、NbH和nb2o5等化合物,这些化合物经过一定的脱氢/加氢循环后保持稳定。有些单原子过渡金属甚至在脱氢循环后仍未反应。这些形成的化合物,包括稳定的单原子过渡金属,通过削弱Mg - H键强度为氢创造扩散通道,从而赋予它们催化作用。这降低了氢的脱附温度和活化能,从而加快了MgH2的氢脱附动力学。MgH2/过渡金属基材料的储氢产量与添加剂类型、MgH2/添加剂的比例、球磨时间、球-结合材料比和脱氢/加氢循环有关。纳米结构的二元和三元过渡金属基材料作为MgH2储氢性能的添加剂,还需要进行更多的研究。此外,可以对球磨或脱氢后形成的已建立的化合物(如上所列)进行加工并直接掺杂到MgH2中。
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