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在Ar气的保护下,利用磁悬浮感应炉熔炼制备La_(0.7)Mg_(0.3-x)Li_xNi_(2.8)Co_(0.5)(x=0.00,0.05,0.10,0.15)合金,并研究Li部分取代Mg对La_(0.7)Mg_(0.3-x)Li_xNi_(2.8)Co_(0.5)(x=0.00,0.05,0.10,0.15)合金电化学性能的影响。研究结果发现,合金电极的最大放电容量依次为385mAh/g(x=0.00)、390mAh/g(x=0.05)、385mAh/g(x=0.10)和393mAh/g(x=0.15),经过100次充放电循环后,合金电极的容量保持率S100从39.7%(x=0.00)增加到42.1%(x=0.05),然后再下降到39.8%(x=0.10)和34.2%(x=0.15),而合金电极在放电电流密度为1200mA/g的高倍率放电性能HRD1200则从x=0.00的80%逐渐增大到x=0.15的82.8%。这充分说明以Li局部替代Mg,对LaMg-Ni合金电极的最大放电影响较小,但能提高合金电极的动力学性能,且适量的Li有利于改善合金电极的循环稳定性。 相似文献
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La_(0.75)Mg_(0.25)Ni_(2.85)Co_(0.45–x)(AlSn)_x(AlSn)_x(x=0.0,0.1,0.2,0.3) alloys were prepared by magnetic induction melting method, and the phase composition and electrochemical properties were investigated systematically. The alloys were mainly composed of LaNi5, La2Ni7 and LaNi3 phase, and the cell volume of LaNi5 increased with the Al and Sn contents. For the alloy corresponding to x=0.0, the Cmax and C150 were 348.9 and 185 mA h/g, respectively, then for the alloy electrode with x=0.2, even though the Cmax was only 309.0 mA h/g less than 348.9 mA h/g, the C150 of 231 mA h/g was much higher than 185 mA h/g. And the values of the limit current density, anodic peak current density and hydrogen diffusion coefficient of the La0.75Mg0.25Ni2.85Co0.35(AlS n)0.1(x=0.1) alloy were 1079.5, 1023.8 mA /g and 5.71×10–10 cm2/s, respectively. Which were the highest than that of any other electrodes. These results suggested that the kinetic property of the La_(0.75)Mg_(0.25)Ni_(2.85)Co_(0.45–x)(AlSn)_x(AlSn)_x(x=0.0, 0.1, 0.2, 0.3) electrodes could be improved effectively by adding moderate contents of Al and Sn. 相似文献
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