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Characteristics of A2B7-type LaYNi-based hydrogen storage alloys modified by partially substituting Ni with Mn
Authors:Wei Xiong  Huizhong Yan  Li Wang  V Verbetsky  Xin Zhao  S Mitrokhin  Baoquan Li  Jin Li  Yan Wang
Affiliation:1. National Engineering Research Center of Rare Earth Metallurgy and Functional Materials, Baotou 014030, PR China;2. Baotou Research Institute of Rare Earths, Baotou 014030, PR China;3. Chemistry Department, Lomonosov Moscow State University, Leninskie Gory 1, Bldg. 3, Moscow 119991, Russian Federation
Abstract:LaY2Ni10.5?xMnx (x = 0.0, 0.5, 1.0, 2.0) alloys are prepared by a vacuum induction-quenching process followed by annealing. The structure, as well as the hydriding/dehydriding and charging/discharging characteristics, of the alloys are investigated via X-ray diffraction (XRD), scanning electron microscopy with energy-dispersive X-ray spectroscopy (SEM-EDS), pressure-composition isotherms (PCI), and electrochemical measurement. The alloys have multiphase structures mainly composed of Gd2Co7-type (3R) and Ce2Ni7-type (2H) phases. Partial substitution of Ni by Mn clearly increases the hydrogen storage capacity of the alloys. The x = 0.5 alloy exhibits a maximum hydrogen storage capacity of 1.40 wt % and a discharge capacity of 392.9 mAh g?1, which are approximately 1.5 and 1.9 times greater than those of the x = 0.0 alloy, respectively. The high-rate dischargeability (HRD) of the x = 0.5 alloy is higher than that of the other alloys because of its large hydrogen diffusion coefficient D, which is a controlling factor in the electrochemical kinetic performance of alloy electrodes at high discharge current densities. Although the cyclic stability of the x = 0.5 alloy is not as high as that of the other alloys, its capacity retention ratio is as high as 56.3% after the 400th cycle. The thermodynamic characteristics of the x = 0.5 alloy satisfy the requirements of the hydride electrode of metal hydride–nickel (MH–Ni) batteries.
Keywords:Hydrogen storage materials  La–Y–Ni alloy  Electrochemical properties  MH–Ni battery
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