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首页> 外文期刊>ACS applied materials & interfaces >A Chemically Polished Zinc Metal Electrode with a Ridge-like Structure for Cycle-Stable Aqueous Batteries
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A Chemically Polished Zinc Metal Electrode with a Ridge-like Structure for Cycle-Stable Aqueous Batteries

机译:一种化学抛光的锌金属电极,具有用于循环稳定的含水电池的脊状结构

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Aqueous rechargeable zinc (Zn) metal batteries show great application prospects in grid-scale energy storage devices due to their good safety, low cost, and considerable energy density. However, the electrical and topographical inhomogeneity caused by the native passivation layer of metallic Zn foil leads to inhomogeneous electrochemical plating and stripping of metallic Zn, and the limited accessible area to the electrolyte of the regular foil electrode causes the poor rate capability, which together hinder the practical application of the Zn metal electrode in rechargeable aqueous batteries. In this work, we show that the native passivation layer on the Zn foil electrode can be removed by a simple chemical polishing strategy, associated with the formation of a three-dimensional ridge-like structure of metallic Zn (r-Zn) on the surface of the Zn foil electrode due to the selective etching of weak crystallographic planes and grain boundary of metallic Zn. The clean and uniform surface of the metallic Zn electrode enables homogeneous plating and stripping of metallic Zn, and the ridge-like structure of r-Zn increases the accessible surface area to the electrolyte and reduces the local current density, which elevates the electrochemical performance of the Zn metal anode with regard to the cycling stability and rate capability. It is demonstrated that a r-Zn anode cycles stably for over 200 h at 1 mA cm(-2) and 0.5 mA h cm(-2) with a low overpotential of 20 mV, which far outperforms 39 h of cycling with an overpotential of 72 mV for its pristine metallic Zn counterpart.
机译:可充电锌(Zn)金属电池在网格尺度储能装置中显示出良好的应用前景,因为它们的安全性,低成本和相当大的能量密度。然而,由金属锌箔的天然钝化层引起的电和地形不均匀性导致非均匀的电化学电镀和金属Zn的汽提,并且常规箔电极的电解质的有限的可接近区域导致差的速率能力,它们一起阻碍Zn金属电极在可充电含水电池中的实际应用。在这项工作中,我们表明Zn箔电极上的天然钝化层可以通过简单的化学抛光策略去除,与表面上的金属Zn(R-Zn)的三维脊状结构的形成相关联Zn箔电极由于弱晶平面的选择性蚀刻和金属锌的晶界。金属Zn电极的清洁和均匀表面能够均匀电镀和金属Zn的汽提,R-Zn的脊状结构将可接近的表面积增加到电解质上并降低了局部电流密度,提高了电化学性能Zn金属阳极关于循环稳定性和速率能力。结果证明,在1mA cm(-2)和0.5 mA H cm(-2)下,具有20mV的低调的R-Zn阳极循环,其距离过电位的循环越差39小时其原始金属Zn对应物的72 mV。

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