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High specific capacity and excellent stability of interface-controlled MWCNT based anodes in lithium ion battery

机译:锂离子电池中界面控制的基于MWCNT的阳极的高比容量和出色的稳定性

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Rechargeable batteries are in high demand for future hybrid vehicles and electronic devices markets. Among various kinds of rechargeable batteries, Li-ion batteries are most popular for their obvious advantages of high energy and power density, ability to offer higher operating voltage, absence of memory effect, operation over a wider temperature range and snowing a low self-discharge rate. Researchers have shown great deal of interest in developing new, improved electrode materials for Li-ion batteries leading to higher specific capacity, longer cycle life and extra safety. In the present study, we have shown that an anode prepared from interface-controlled multiwall carbon nanotubes (MWCNT), directly grown on copper current collectors, may be the best suitable anode for a Li-ion battery. The newly developed anode structure has shown very high specific capacity (almost 2.5 times as that of graphite), excellent rate capability, nil capacity degradation in long-cycle operation and introduced a higher level of safety by avoiding organic binders. Enhanced properties of the anode were well supported by the structural characterization and can be related to very high Li-ion intercalation on the walls of CNTs, as observed in HRTEM. This newly developed CNT-based anode structure is expected to offer appreciable advancement in performance of future Li-ion batteries.
机译:未来的混合动力汽车和电子设备市场对可充电电池有很高的需求。在各种可充电电池中,锂离子电池以其高能量和功率密度,提供更高的工作电压,无记忆效应,在较宽的温度范围内工作以及自放电率低等明显优势而广受欢迎。速度。研究人员对开发新的,经过改进的锂离子电池电极材料表现出极大的兴趣,这些材料可提高比容量,延长循环寿命并提高安全性。在本研究中,我们已经表明,由直接在铜集流体上生长的界面控制多壁碳纳米管(MWCNT)制备的阳极可能是最适合锂离子电池的阳极。新开发的阳极结构显示出非常高的比容量(几乎是石墨的2.5倍),优异的倍率容量,长循环操作中零容量的降低,并且通过避免使用有机粘合剂而引入了更高的安全性。如在HRTEM中所观察到的,阳极的增强特性得到结构特征的良好支持,并且可能与CNT壁上非常高的锂离子嵌入有关。这种新开发的基于CNT的负极结构有望在未来的锂离子电池的性能方面提供可观的进步。

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