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Metallic glassy Zr70Ni20Pd10 powders for improving the hydrogenation/dehydrogenation behavior of MgH2

机译:金属玻璃态Zr70Ni20Pd10粉末,用于改善MgH2的加氢/脱氢行为

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Because of its low density, storage of hydrogen in the gaseous and liquids states possess technical and economic challenges. One practical solution for utilizing hydrogen in vehicles with proton-exchange fuel cells membranes is storing hydrogen in metal hydrides. Magnesium hydride (MgH2) remains the best hydrogen storage material due to its high hydrogen capacity and low cost of production. Due to its high activation energy and poor hydrogen sorption/desorption kinetics at moderate temperatures, the pure form of MgH2 is usually mechanically treated by high-energy ball mills and catalyzed with different types of catalysts. These steps are necessary for destabilizing MgH2 to enhance its kinetics behaviors. In the present work, we used a small mole fractions (5 wt.%) of metallic glassy of Zr70Ni20Pd10 powders as a new enhancement agent to improve its hydrogenation/dehydrogenation behaviors of MgH2. This short-range ordered material led to lower the decomposition temperature of MgH2 and its activation energy by about 121?°C and 51?kJ/mol, respectively. Complete hydrogenation/dehydrogenation processes were successfully achieved to charge/discharge about 6 wt.%H2 at 100?°C/200?°C within 1.18?min/3.8?min, respectively. In addition, this new nanocomposite system shows high performance of achieving continuous 100 hydrogen charging/discharging cycles without degradation.
机译:由于其密度低,因此气态和液态氢的存储面临着技术和经济挑战。在具有质子交换燃料电池膜的车辆中利用氢的一种实际解决方案是将氢存储在金属氢化物中。氢化镁(MgH2)由于其较高的氢气容量和较低的生产成本而仍然是最佳的氢气存储材料。由于其在中等温度下的高活化能和较差的氢吸附/解吸动力学,因此纯净形式的MgH2通常由高能球磨机进行机械处理,并用不同类型的催化剂催化。这些步骤对于使MgH2不稳定以增强其动力学行为是必需的。在目前的工作中,我们使用了Zr70Ni20Pd10粉末的金属玻璃态的小摩尔分数(5重量%)作为新型增强剂,以改善其MgH2的加氢/脱氢行为。这种短程有序物质使MgH2的分解温度及其活化能分别降低了约121°C和51?kJ / mol。成功地完成了完全的加氢/脱氢过程,分别在1.18?min / 3.8?min内分别在100?C / 200?C下充放电约6 wt。%的H2。另外,这种新的纳米复合材料系统具有连续100个氢气充/放电循环而不会降解的高性能。

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