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Hydrogen-Storage Properties of Nanocrystalline Mg-Based Materials Created Through Controlled Devitrification of a Metallic Glass

机译:通过金属玻璃的受控失透产生的纳米晶镁基材料的储氢性能

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Mg-based nanostructured materials with a composition of Mg_(85)Ni_(15-x)M_x (M=Y, La, or Pd) have been fabricated by proper alloying additions and controlling the crystallization process of melt spun metallic glass ribbon. XRD suggests that the average crystallite sizes range from 100 nm in the binary materials to <30 nm in the ternary alloys. Hydrogen absorption/desorption measurements show improved properties compared to nanocrystalline alloys fabricated using other processing strategies. Surface treatment of the binary and Pd-containing ribbons by ball milling or submersion in aqueous NH_4~+ allows the materials to be activated at 473 K, significantly lower than conventional Mg-based hydrogen storage materials. Y and La additions improve the maximum storage capacity. Absorption kinetics are also improved the materials is alloyed with La, while Y slows the reaction kinetics. Some degradation in storage capacity is observed when the materials are exposed to a cyclic absorption/desorption process, likely due to microstructural coarsening. The Mg_(85)Ni_(10)Pd_5 composition fully absorbs and desorbs ≈5 wt. % H at 473 K, while other bulk Mg-based materials require temperatures in excess of 573 K.
机译:通过适当的合金添加和控制熔融纺丝金属玻璃带的结晶过程,可以制造出具有Mg_(85)Ni_(15-x)M_x(M = Y,La或Pd)组成的Mg基纳米结构材料。 XRD表明,平均晶粒尺寸范围从二元材料的100 nm到三元合金的<30 nm。与使用其他加工策略制造的纳米晶合金相比,氢吸收/解吸测量显示出改进的性能。通过球磨或浸入NH_4〜+水溶液中对二元和含Pd碳带进行表面处理,可以使该材料在473 K下活化,这大大低于常规的基于Mg的储氢材料。 Y和La的添加提高了最大存储容量。吸收动力学也得到了改善,材料与La合金化,而Y减慢了反应动力学。当材料暴露于循环吸收/解吸过程时,可能会观察到存储容量的某些下降,这可能是由于微结构变粗造成的。 Mg_(85)Ni_(10)Pd_5组合物充分吸收和解吸≈5wt。 H含量为473 K,而其他基于Mg的块状材料则需要超过573 K的温度。

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