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Facile kinetics of Li-ion intake causes superior rate capability in multiwalled carbon nanotube@TiO2 nanocomposite battery anodes

机译:锂离子摄入的简便动力学导致多壁碳纳米管@ TiO2纳米复合电池阳极具有优异的倍率性能

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摘要

Nanotechnology produces hybrids with superior properties than its individual constituents. Here MWCNT@TiO2 composites have been synthesized by controlled hydrolysis of titanium isopropoxide over MWCNT, to be incorporated into Li-ion battery electrodes. Outstanding rate capability of the coated nanotubes is observed in comparison to pristine TiO2. Specific storage capacity as high as 250 mAh g−1 is achieved for the nanocomposite electrode which doubles that encountered for TiO2-based anodes. The mechanism explaining the enhancement in power performance has been revealed by means of electrochemical impedance methods. Although both pristine TiO2 and MWCNT@TiO2 would potentially exhibit comparable specific capacity, the charge transfer resistance for the latter is reduced by a factor 10, implying a key role of MWCNTs to favor the interfacial Li+ ion intake from the electrolyte. MWCNT efficiently provides electrons to the nanostructure through the Ti–C bond which assists the Li+ ion incorporation. These findings provide access to the detailed lithiation kinetics of a broad class of nanocomposites for battery applications.
机译:纳米技术生产的杂种比其单个成分具有更好的性能。此处,MWCNT @ TiO2复合材料是通过在MWCNT上进行异丙醇钛的可控水解而合成的,并被掺入到锂离子电池电极中。与原始TiO 2相比,观察到涂覆的纳米管具有出色的速率能力。纳米复合电极的比存储容量高达250 mAh g-1,是TiO2基阳极的两倍。已经通过电化学阻抗方法揭示了解释提高功率性能的机理。尽管原始的TiO2和MWCNT @ TiO2都可能显示出可比的比容量,但后者的电荷转移阻力降低了10倍,这暗示了MWCNT的关键作用是有利于从电解质中吸收界面Li +离子。 MWCNT通过Ti-C键有效地将电子提供给纳米结构,这有助于Li +离子的结合。这些发现为电池应用提供了广泛的纳米复合材料详细锂化动力学的途径。

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