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ZnO Nanoneedle Arrays Directly Grown on Bulk Nickel Substrate for Li Ion Battery Electrodes with Improved Performance

机译:ZnO纳尼罩阵列直接生长在堆镍基材上,用于Li离子电池电极,具有改进的性能

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In this paper, a low-temperature (T=70°C) solution-phase approach has been developed for the fabrication of vertically-aligned ZnO nanoneedle arrays directly on bulk nickel substrate. The synthetic process involving no seeds, no catalysts, and no surfactants can be readily scaled up. The as-grown ZnO arrays are further used for the first time as anode materials for Li-ion batteries operated in the voltage window 0.05-2.5 V. In the preparation of battery electrode, there is no need to transfer the obtained ZnO arrays to a different surface or align them; in addition, no conducting carbon and other additives such as binder are employed. These offer significant advantages with respect to the cost and practicability. Galvanostatic cycling experiments show that our ZnO nanoneedle arrays exhibit considerably improved performance (especially the cycling stability) as compared to the powder of disordered nanoneedles. A first discharge capacity of 1219 mAh/g and a reversible discharge capacity of ~495 mAh/g after 10 cycles are observed (current rate: 200 mA/g). In contrast, ZnO film consisting of random nanoneedles has a smaller first discharge capacity (1090 mAh/g) and its reversible capacity fades rapidly even from the second cycle. The electrochemical performance of ZnO nanoneedle arrays can be further tuned by heat treatment of ZnO active materials at Ar atmosphere, which enhances the adhesion of ZnO to nickel substrate. Our results, combined with the fact that ZnO are cheap, easily prepared, and environmentally compatible, make the ZnO nanoneedle arrays a promising anode material for Li-ion batteries.
机译:在本文中,已经开发了低温(T = 70℃)溶液相方法,用于将垂直对齐的ZnO纳尼罩阵列直接制造在块状镍基材上。涉及没有种子的合成方法,无催化剂,没有表面活性剂可以容易地缩放。作为在电压窗口中操作的锂离子电池的阳极材料进一步首次使用的ZnO阵列作为锂离子电池的阳极材料。在电池电极的制备中,不需要将所获得的ZnO阵列转移到A.不同的表面或对齐它们;另外,没有使用导电碳和其他添加剂如粘合剂。这些关于成本和实用性具有显着的优势。循环循环实验表明,与无序的纳米粉末相比,我们的ZnO纳尼罩阵列表现出显着提高的性能(特别是循环稳定性)。观察到1019mAh / g的第一个放电容量和10次循环后的可逆放电容量为约495mAh / g(电流率:200 mA / g)。相反,由无随机纳尼的ZnO膜具有较小的第一放电容量(1090mAh / g),即使从第二循环中也迅速淡入速度。 ZnO纳尼罩阵列的电化学性能可以通过在Ar气氛下的ZnO活性材料的热处理进一步调整,这增强了ZnO与镍基材的粘附性。我们的结果结合了ZnO便宜,轻松准备和环境兼容,使ZnO纳尼罩阵列成为锂离子电池的有希望的阳极材料。

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