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The effect of TiO2 coating on the electrochemical performance of ZnO nanorod as the anode material for lithium-ion battery

机译:TiO 2 涂层对作为锂离子电池负极材料的ZnO纳米棒电化学性能的影响

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ZnO nanorods were coated with TiO2 thin film using the atomic layer deposition (ALD) process. X-ray diffraction, scanning electron microscopy, and transmission electron microscopy were used to characterize the crystal structure and surface morphology of the coated composites. Results of galvanostatic charge and discharge tests and cyclic voltammograms suggest that lithium ions can reversibly intercalate into and deintercalate from TiO2-coated ZnO nanorods, and that stable cycling behavior in an ethylene carbonate-based electrolyte can be achieved. The TiO2 coating is believed to reduce the degree of reaction electrodes have with the electrolyte during the charge–discharge process since the inactive coating layer prevents the electrode from having direct contact with the electrolyte. Furthermore, the one-dimensional nanorods provide a relatively higher surface area than those of their bulk form or thin film, which allows a much greater portion of atoms on the surface to undergo the electrochemical reaction. The electrochemical study indicates that the TiO2-coated ZnO nanorod arrays might be a candidate for the anode material in Li-ion batteries.
机译:ZnO纳米棒采用原子层沉积(ALD)工艺包覆TiO 2 薄膜。 X射线衍射,扫描电子显微镜和透射电子显微镜被用来表征涂层复合材料的晶体结构和表面形态。恒电流充放电测试和循环伏安图的结果表明,锂离子可以可逆地插入TiO 2 包覆的ZnO纳米棒中或从中脱嵌,并且可以在碳酸亚乙酯基电解质中实现稳定的循环行为。 。 TiO 2 涂层被认为可以降低充放电过程中电极与电解质的反应程度,因为无活性涂层会阻止电极与电解质直接接触。此外,一维纳米棒比其整体形式或薄膜的表面积更大,从而使表面上更多的原子部分经历电化学反应。电化学研究表明,TiO 2 包覆的ZnO纳米棒阵列可能是锂离子电池负极材料的候选材料。

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