Zinc particles coated with bismuth oxide based glasses as anode material for zinc air batteries with improved electrical rechargeability
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Zinc particles coated with bismuth oxide based glasses as anode material for zinc air batteries with improved electrical rechargeability

机译:涂有氧化铋的玻璃涂覆型玻璃作为锌空气电池的阳极材料,具有改善的电气可充电性

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AbstractZinc particles are commonly used as anode material in primary zinc air batteries. One of the reasons for irreversibility of this battery system is degradation of zinc metal, such as zinc passivation by formation of ZnO layers in alkaline solution. A promising approach for reducing zinc degradation is modification of zinc with protective coatings. But up to now, no electrical rechargeability of coated zinc particles could be enabled after complete discharge. In this work, bismuth oxide based coatings are introduced which should improve cyclic stability. Bi2O3-ZnO-CaO and Bi2O3-ZnO-SiO2glasses were prepared and their chemical stability as well as swellability in 6?M KOH were discussed. The coating of zinc particles was realized by mechanical method. The electrochemical performance of coated zinc particles was investigated by applying complete discharge and charge steps, and compared with the behavior of uncoated zinc particles. The results pointed out, that Bi2O3-ZnO-CaO-coated zinc particles enabled improved rechargeability. A cyclic stability of 20 full cycles was realized in excess electrolyte, whereas uncoated zinc achieved just one complete discharge. The cumulated zinc utilization of coated zinc particles could be improved to 465%, as compared to uncoated zinc showing just 85% in test cells with electrolyte limitation.Highlights?Functionalized zinc particles for rechargeable zinc air batteries.?Coating of zinc particles with bismuth oxide based glasses.?Zinc degradation was reduced by the coating forming an interpenetrating network.?Cumulated zinc utilization could be increased up to 465% (uncoated zinc: 85%).]]>
机译:<![CDATA [ 抽象 锌颗粒通常用作初级锌空气电池中的阳极材料。这种电池系统不可逆转性的原因之一是锌金属的降解,例如通过在碱性溶液中形成ZnO层的锌钝化。一种有望的降低锌降解的方法是用保护涂层的锌改性。但到目前为止,在完全放电后,不能通过涂覆的锌颗粒的电荷可充电。在这项工作中,引入了氧化铋基涂层,其应提高循环稳定性。 BI 2> 2 O 3 -ZNO-CAO和BI 2 O 3 -ZNO-SIO 2 眼镜讨论了制备及其化学稳定性以及6?M KOH的溶胀性。通过机械方法实现锌颗粒的涂层。通过施加完全放电和充电步骤,研究了涂覆的锌颗粒的电化学性能,并与未涂覆的锌颗粒的行为进行了比较。结果指出,BI 2 O 3 -ZNO-CAO-涂覆的锌颗粒使可充电能力提高。在过量的电解质中实现了20个全周期的循环稳定性,而未涂覆的锌仅取得一个完全放电。涂覆的锌颗粒的累积锌利用率可以提高至465%,与具有电解质限制的试验细胞中仅显示85%的未涂覆锌相比。 亮点 < CE:标签>? 可充电锌空气电池的功能化锌粒子。 < CE:列表项ID =“U0015”> 用铋基玻璃涂覆锌颗粒。 锌降解是红色的由涂层形成形成互穿网络。 累积锌利用率可增加至465%(未涂覆锌:85%)。 ]]>

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