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Rapidly solidified magnesium: nickel alloys as hydrogen storage materials

机译:快速凝固的镁:镍合金作为储氢材料

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摘要

Due to high hydrogen capacity, good reversibility and low cost, magnesium hydride is one of the most promising hydrogen storage materials. However, the high desorption temperature and slow hydriding kinetics hinder the application of magnesium hydrides. To improve the hydrogen storage characteristics of magnesium hydrides, many effective treatments have been developed and applied, such as ball milling, melt spinning, alloying with other metals, adding catalysts and using thin film technique. In this work, melt spinning and alloying with Ni were the main sample modification methods used to improve hydrogen storage properties for magnesium hydrides. At the beginning of this project, it was found that it was difficult to repeat the methodology of sample preparation in the literature. Therefore, sample synthesis method was developed after numerous preliminary trials and a series of Mg-Ni alloys were melt-spun successfully.udThe structural characterization and analysis of hydrogen storage property were performed on the melt-spun Mg-Ni samples in a range of compositions. It was found that a nanocrystalline / amorphous structure was produced by melt spinning, and a metastable intermediate phase, Mg(_6)Ni, was discovered in the melt-spun materials. The melt-spun Mg-Ni ribbons exhibited fast kinetics of both absorption and desorption at 300 °C, with a high capacity. Moreover, they exhibited low temperature and even room temperature hydrogen sorption, with slow kinetics.(gamma)-MgH(_2) phase, which forms usually under high pressure, has been found in the samples, which probably caused the ambient hydrogen absorption.
机译:由于氢容量高,可逆性好且成本低,氢化镁是最有前途的储氢材料之一。但是,高解吸温度和缓慢的氢化动力学阻碍了氢化镁的应用。为了改善氢化镁的储氢特性,已经开发并应用了许多有效的处理方法,例如球磨,熔融纺丝,与其他金属合金化,添加催化剂和使用薄膜技术。在这项工作中,熔融纺丝和与Ni合金化是用于改善氢化镁储氢性能的主要样品改性方法。在该项目开始时,发现很难重复文献中的样品制备方法。因此,在大量的初步试验后,人们开发了样品合成方法,并成功地对一系列Mg-Ni合金进行了熔纺。 ud对Mg-Ni熔纺样品进行了结构表征和储氢性能分析。成分。发现通过熔融纺丝产生了纳米晶/非晶结构,并且在熔融纺丝材料中发现了亚稳态中间相Mg (_ 6 )Ni。熔融纺丝的Mg-Ni碳带在300°C时表现出快速的吸收和解吸动力学,具有很高的容量。而且,它们表现出低温甚至室温的氢吸附,动力学缓慢。在样品中发现了通常在高压下形成的( gamma )-MgH (_ 2 )相,这可能导致了环境氢吸收。

著录项

  • 作者

    Yi Xiaodong;

  • 作者单位
  • 年度 2014
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  • 原文格式 PDF
  • 正文语种 English
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