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A general strategy toward graphitized carbon coating on iron oxides as advanced anodes for lithium-ion batteries

机译:锂离子电池氧化铁氧化铁碳涂层的一般策略

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Integration of carbon materials with benign iron oxides is blazing a trail in constructing high-performance anodes for lithium-ion batteries (LIBs). In this paper, a unique general, simple, and controllable strategy is developed toward in situ uniform coating of iron oxide nanostructures with graphitized carbon (GrC) layers. The basic synthetic procedure only involves a simple dip-coating process for the loading of Ni-containing seeds and a subsequent Ni-catalyzed chemical vapor deposition (CVD) process for the growth of GrC layers. More importantly, the CVD treatment is conducted at a quite low temperature (450 degrees C) and with extremely facile liquid carbon sources consisting of ethylene glycol (EG) and ethanol (EA). The GrC content of the resulting hybrids can be controllably regulated by altering the amount of carbon sources. The electrochemical results reveal remarkable performance enhancements of iron oxide@GrC hybrids compared with pristine iron oxides in terms of high specific capacity, excellent rate and cycling performance. This can be attributed to the network-like GrC coating, which can improve not only the electronic conductivity but also the structural integrity of iron oxides. Moreover, the lithium storage performance of samples with different GrC contents is measured, manifesting that optimized electrochemical property can be achieved with appropriate carbon content. Additionally, the superiority of GrC coating is demonstrated by the advanced performance of iron oxide@GrC compared with its corresponding counterpart, i.e., iron oxides with amorphous carbon (AmC) coating. All these results indicate the as-proposed protocol of GrC coating may pave the way for iron oxides to be promising anodes for LIBs.
机译:碳材料与良性氧化铁的整合在构建锂离子电池(LIBS)的高性能阳极方面燃烧着迹线。在本文中,朝向具有石墨化碳(GRC)层的氧化铁纳米结构的原位均匀涂层,开发了独特的一般,简单和可控的策略。基本合成程序仅涉及用于负载含Ni种子的简单浸涂方法和用于GRC层的生长的随后的Ni催化的化学气相沉积(CVD)方法。更重要的是,CVD处理在相当低的温度(450℃),并且具有由乙二醇(例如)和乙醇(EA)组成的极其容易液体碳源。通过改变碳源的量可以控制所得杂种的GRC含量。电化学结果揭示了氧化铁@ GRC杂种的显着性能增强与高特定容量,优异的速率和循环性能方面的原始铁氧化物相比。这可以归因于网络状GRC涂层,其不仅可以改善电子电导率,而且可以改善氧化铁的结构完整性。此外,测量具有不同GRC含量的样品的锂储存性能,表明可以通过适当的碳含量实现优化的电化学性能。另外,通过氧化铁@ GRC的先进性能,与其相应的对应物,即具有无定形碳(AMC)涂层的氧化铁的氧化铁涂层的先进性,证明了GRC涂层的优越性。所有这些结果表明,AS提出的GRC涂层方案可以为氧化铁的抗氧化物铺平为LIBS的阳极铺平。

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