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Stable and efficient Li-ion battery anodes prepared from polymer-derived silicon oxycarbide-carbon nanotube shell/core composites

机译:由聚合物衍生的碳氧化硅-碳纳米管壳/芯复合材料制备的稳定高效的锂离子电池阳极

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摘要

We demonstrate synthesis and electrochemical performance of polymer-derived silicon oxycarbide-carbon nanotube (SiOC-CNT) composites as a stable lithium intercalation material for secondary battery applications. Composite synthesis was achieved through controlled thermal decomposition of 1,3,5,7-tetramethyl 1,3,5,7-tetravinyl cyclotetrasiloxane (TTCS) precursor on carbon nanotubes surfaces that resulted in formation of shell/core type ceramic SiOC-CNT architecture. Li-ion battery anode (prepared at a loading of~ 1.0 mg cmˉ²) showed stable charge capacity of 686 mAh gˉ¹ even after 40 cycles. The average coulombic efficiency (excluding the first cycle loss) was 99.6 %. Further, the post electrochemical imaging of the dissembled cells showed no apparent damage to the anode surface, highlighting improved chemical and mechanical stability of these composites. Similar trend was observed in the rate capability tests, where the SiOC-CNT anode (with 5 wt.% loading in TTCS) again showed stable performance, completely recovering the first cycle capacity of ~ 750 mAh gˉ¹ when the current density was brought back to 50 mA gˉ¹ after cycling at higher current densities.
机译:我们证明了聚合物来源的碳氧化碳-碳纳米管(SiOC-CNT)复合材料的合成和电化学性能,该复合材料是用于二次电池应用的稳定锂嵌入材料。通过在碳纳米管表面上控制1,3,5,7-四甲基1,3,5,7-四乙烯基环四硅氧烷(TTCS)前驱物的热分解来实现复合合成,这导致形成壳/芯型陶瓷SiOC-CNT结构。锂离子电池阳极(在〜1.0 mg cm -2的负载下制备)即使在40次循环后仍显示出686 mAh g -1的稳定充电容量。平均库仑效率(不包括第一次循环损失)为99.6%。此外,分解后的电池的电化学后成像未显示出对阳极表面的明显损害,突出了这些复合材料的化学和机械稳定性。在速率能力测试中观察到了类似的趋势,其中SiOC-CNT阳极(TTCS中的负载为5 wt%)再次显示出稳定的性能,当电流密度恢复到750 mAh g¹时,完全恢复了第一次循环容量。在较高电流密度下循环后为50 mA g¹。

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    Bhandavat R.; Singh Gurpreet;

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  • 年度 2013
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