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Electrochemical study of NiO nanoparticles electrode for application in rechargeable lithium-ion batteries

机译:用于可充电锂离子电池的NiO纳米粒子电极的电化学研究

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Nickel oxide nanoparticles were synthesized via a simple and inexpensive microwave-assisted synthesis method within a fast reaction time of less than 20 min. The calcination of as-prepared precursor at 600℃ produces single phase nickel oxide. The lattice structure and morphology of the sample were investigated by X-ray diffraction, field-emission scanning electron microscopy and field-emission transmission electron microscopy. The particle size range of the nickel oxide nanoparticles varied from 50 to 60 ran. Nickel oxide nanoparticles exhibited good electrochemical performances as an anode material for lithium-ion batteries. The prepared nickel oxide anode revealed a large initial discharge capacity of 1111.08 mAhg~(-1) at 0.03 Crate and retained 80% of initial capacity (884.30 mAhg~(-1)) after 20 cycles. Furthermore, at elevated rate of 3.7 C, the charge capacity of the nickel oxide electrode was as high as 253.1 mAhg~(-1), which was 35% greater than that of commercial bulk nickel oxide (188 mAhg~(-1)). The enhancement of the electrochemical performance was attributed to the high specific surface area, good electric contact among the particles and easier lithium ion diffusion.
机译:氧化镍纳米粒子是通过简单且便宜的微波辅助合成方法在不到20分钟的快速反应时间内合成的。制备的前驱体在600℃下煅烧可生成单相氧化镍。通过X射线衍射,场发射扫描电子显微镜和场发射透射电子显微镜研究了样品的晶格结构和形态。氧化镍纳米颗粒的粒径范围为50至60nm。氧化镍纳米颗粒作为锂离子电池的负极材料具有良好的电化学性能。制备的氧化镍阳极在0.03Crate下显示出较大的初始放电容量1111.08 mAhg〜(-1),并在20个循环后保留了初始容量的80%(884.30 mAhg〜(-1))。此外,在3.7 C的升温速率下,氧化镍电极的充电容量高达253.1 mAhg〜(-1),比市售本体氧化镍(188 mAhg〜(-1))高35%。 。电化学性能的提高归因于高比表面积,颗粒之间的良好电接触和更容易的锂离子扩散。

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