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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Highly stable Zn metal anodes enabled by atomic layer deposited Al2O3 coating for aqueous zinc-ion batteries
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Highly stable Zn metal anodes enabled by atomic layer deposited Al2O3 coating for aqueous zinc-ion batteries

机译:高稳定的Zn金属阳极,由原子层沉积的Al 2 O 3涂层用于锌离子电池

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Rechargeable aqueous zinc-ion batteries (ZIBs) have attracted increasing attention as an energy storage technology for large-scale applications, due to their high capacity (820 mA h g(-1) and 5854 A h L-1), inherently high safety, and their low cost. However, the overall performance of ZIBs has been seriously hindered by the poor rechargeability of Zn anodes, because of the dendrite growth, passivation, and hydrogen evolution problems associated with Zn anodes. Herein, Al2O3 coating by an atomic layer deposition (ALD) technique was developed to address the aforementioned problems and improve the rechargeability of Zn anodes for ZIBs. By coating the Zn plate with an ultrathin Al2O3 layer, the wettability of Zn was improved and corrosion was inhibited. As a result, the formation of Zn dendrites was effectively suppressed, with a significantly improved lifetime in the Zn-Zn symmetric cells. With the optimized coating thickness of 100 cycles, 100Al(2)O(3)@Zn symmetric cells showed a reduced overpotential (36.5 mV) and a prolonged life span (over 500 h) at 1 mA cm(-2). In addition, the 100Al(2)O(3)@Zn has been verified in Zn-MnO2 batteries using layered delta-MnO2 as the cathode and consequently exhibits superior electrochemical performance with a high capacity retention of 89.4% after over 1000 cycles at a current density of 1 mA cm(-2) (3.33C for MnO2) was demonstrated. It is expected that the novel design of Al2O3 modified Zn anodes may pave the way towards high-performance aqueous ZIBs and shed light on the development of other metal anode-based battery systems.
机译:由于其高容量(820 mA Hg(-1)和5854 A H L-1),可充电锌离子电池(Zibs)作为大规模应用的能量存储技术,吸引了越来越多的关注。(820 mA Hg(-1)和5854 A H L-1),固有的高安全性,和他们的低成本。然而,由于与Zn阳极相关的枝晶生长,钝化和氢气演化问题,Zibs的整体性能受到Zn阳极可差的可差的可逆性受到严重阻碍。这里,通过原子层沉积(ALD)技术的Al 2 O 3涂覆以解决上述问题并改善Zn阳极对ZIB的可再核性。通过用超薄Al2O3层涂覆Zn板,改善了Zn的润湿性并抑制腐蚀。结果,有效地抑制了Zn树突的形成,在Zn-Zn对称细胞中具有显着改善的寿命。随着100次循环的优化涂层厚度,100al(2)O(3)@Zn对称细胞显示出降低的过电(36.5mV),延长寿命跨度(超过500小时),在1mA cm(-2)。此外,100AL(2)O(3)@Zn在Zn-MnO2电池中使用分层Delta-MnO2作为阴极,因此在A超过1000次循环后,高容量保持的高容量保留率高的电化学性能为89.4%证明了电流密度为1 mA cm(-2)(3.33℃)。预计Al2O3改性Zn阳极的新颖设计可以铺平朝向高性能水性Zibs和棚光的方式铺平了其他金属阳极基电池系统的开发。

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