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首页> 外文期刊>ACS nano >Fabrication of 3D Core-Shell Multiwalled Carbon Nanotube@RuO2 Lithium-Ion Battery Electrodes through a RuO2 Atomic Layer Deposition Process
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Fabrication of 3D Core-Shell Multiwalled Carbon Nanotube@RuO2 Lithium-Ion Battery Electrodes through a RuO2 Atomic Layer Deposition Process

机译:通过RuO2原子层沉积工艺制备3D核壳多壁碳纳米管@ RuO2锂离子电池电极

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Pushing lithium-ion battery (LIB) technology forward to its fundamental scaling limits requires the ability to create designer heterostructured materials and architectures. Atomic layer deposition (ALD) has recently been applied to advanced nanostructured energy storage devices due to the wide range of available materials, angstrom thickness control, and extreme conformality over high aspect ratio nanostructures. A class of materials referred to as conversion electrodes has recently been proposed as high capacity electrodes. RuO2 is considered an ideal conversion material due to its high combined electronic and ionic conductivity and high gravimetric capacity, and as such is an excellent material to explore the behavior of conversion electrodes at nanoscale thicknesses. We report here a fully characterized atomic layer deposition process for RuO2, electrochemical cycling data for ALD RuO2, and the application of the RuO2 to a composite carbon nanotube electrode scaffold with nucleation-controlled RuO2 growth. A growth rate of 0.4 angstrom/cycle is found between similar to 210-240 degrees C. In a planar configuration, the resulting RuO2 films show high first cycle electrochemical capacities of similar to 1400 mAh/g, but the capacity rapidly degrades with charge/discharge cycling. We also fabricated core/shell MWCNT/RuO2 heterostructured 3D electrodes, which show a 50 x increase in the areal capacity over their planar counterparts, with an areal lithium capacity of 1.6 mAh/cm(2).
机译:将锂离子电池(LIB)技术推向其基本的扩展极限要求具有创建设计者异质结构材料和体系结构的能力。原子层沉积(ALD)由于可利用的材料范围广,埃厚度控制以及在高纵横比纳米结构上的极端保形性,最近已应用于先进的纳米结构储能设备。最近已经提出了一类被称为转换电极的材料作为高容量电极。由于RuO2具有较高的电子和离子电导率以及较高的重量分析能力,因此被认为是理想的转换材料,因此,它是研究纳米级转换电极性能的极佳材料。我们在这里报告了RuO2的完全特征化的原子层沉积过程,ALD RuO2的电化学循环数据,以及RuO2在具有成核控制的RuO2生长的复合碳纳米管电极支架中的应用。发现在大约210-240摄氏度之间的生长速率为0.4埃/循环。在平面配置中,所得的RuO2膜显示出类似于1400 mAh / g的高第一循环电化学容量,但是随着电荷/放电循环。我们还制造了核/壳MWCNT / RuO2异质结构3D电极,该电极的面容量比其平面对应物增加了50倍,面锂容量为1.6 mAh / cm(2)。

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