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首页> 外文期刊>Electrochimica Acta >The influence of Cu(OH){sub}2 addition on the low-temperature electrochemical performance of La{sub}0.75Mg{sub}0.25Ni{sub}3.5 hydrogen storage alloy
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The influence of Cu(OH){sub}2 addition on the low-temperature electrochemical performance of La{sub}0.75Mg{sub}0.25Ni{sub}3.5 hydrogen storage alloy

机译:Cu(OH){sub} 2的添加对La {sub} 0.75Mg {sub} 0.25Ni {sub} 3.5储氢合金的低温电化学性能的影响

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摘要

The influence of Cu(OH){sub}2 addition in 7 mol/L KOH alkaline electrolyte on the electrochemical properties of La{sub}0.75Mg{sub}0.25Ni{sub}3.5 hydrogen storage alloy electrode was investigated in the testing temperature range of from 25 ℃ to -40 ℃ in this paper. XRD Rietveld analyses shows that the La{sub}0.75Mg{sub}0.25Ni{sub}3.5 hydrogen storage alloy consists of LaNi{sub}5 phase, (La, Mg){sub}2Ni{sub}7 phase and (La,Mg)Ni{sub}3 phase. The maximum discharge capacity and the high-rate dischargeability (HRD) of the La{sub}0.75Mg{sub}0.25Ni{sub}3.5 alloy electrode both decrease with decreasing testing temperature, which mainly due to the slower hydrogen transfer in the bulk of the alloy and the lower electrocatalytic activity at lower temperatures. The scanning electron microscopy (SEM)/energy dispersive X-ray spectroscopy (EDS) analyses indicate that, with the addition of Cu(OH){sub}2 to the KOH alkaline electrolyte, fine particles of metal Cu can be coated on the La{sub}0.75Mg{sub}0.25Ni{sub}3.5 alloy electrode surface during charging process by electrodeposition. The Cu powders deposited on the La{sub}0.75Mg{sub}0.25Ni{sub}3.5 alloy electrode can improve the alloy's low-temperature discharge properties by decreasing its charge-transfer resistance and increasing its exchange current density. The cyclic stability of the Cu-deposited La{sub}0.75Mg{sub}0.25Ni{sub}3.5 alloy electrode can be also improved to a certain extent by increasing its corrosive resistance in KOH alkaline electrolyte.
机译:在测试温度下研究了在7 mol / L KOH碱性电解液中添加Cu(OH){sub} 2对La {sub} 0.75Mg {sub} 0.25Ni {sub} 3.5储氢合金电极电化学性能的影响。本文的温度范围为25℃至-40℃。 XRD Rietveld分析表明,La {sub} 0.75Mg {sub} 0.25Ni {sub} 3.5储氢合金由LaNi {sub} 5相,(La,Mg){sub} 2Ni {sub} 7相和(La ,Mg)Ni {sub} 3相。 La {sub} 0.75Mg {sub} 0.25Ni {sub} 3.5合金电极的最大放电容量和高倍率放电率(HRD)均随着测试温度的降低而降低,这主要是由于大量氢的转移较慢在较低温度下具有较低的电催化活性和较低的电催化活性。扫描电子显微镜(SEM)/能量色散X射线光谱(EDS)分析表明,向KOH碱性电解液中添加Cu(OH){sub} 2可以在La上涂覆金属Cu的细颗粒通过电沉积在充电过程中{sub} 0.75Mg {sub} 0.25Ni {sub} 3.5合金电极表面。沉积在La {sub} 0.75Mg {sub} 0.25Ni {sub} 3.5合金电极上的Cu粉末可通过降低电荷转移电阻并增加交换电流密度来改善合金的低温放电性能。通过增加其在KOH碱性电解液中的耐腐蚀性,还可以在一定程度上改善Cu沉积的La {sub} 0.75Mg {sub} 0.25Ni {sub} 3.5合金电极的循环稳定性。

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