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Spray-Printedand Self-Assembled Honeycomb Electrodesof Silicon-Decorated Carbon Nanofibers for Li-Ion Batteries

机译:喷印和自组装蜂窝电极锂电池的硅装饰碳纳米纤维的制造

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摘要

Directional, micron-scale honeycomb pores in Li-ion battery electrodes were fabricated using a layer-by-layer, self-assembly approach based on spray-printing of carbon nanofibers. By controlling the drying behavior of each printed electrode layer through optimization of (i) the volume ratio of fugitive bisolvent carriers in the suspension and (ii) the substrate temperature during printing, self-assembled, honeycomb pore channels through the electrode were created spontaneously and reliably on current collector areas larger than 20 cm × 15 cm. The honeycomb pore structure promoted efficient Li-ion dynamics at high charge/discharge current densities. Incorporating an optimum fraction (2.5 wt %) of high-energy-density Si particulate into the honeycomb electrodes provided a 4-fold increase in deliverable discharge capacity at 8000 mA/g. The spray-printed, honeycomb pore electrodes were then investigated as negative electrodes coupled with similar spray-printed LiFePO4 positive electrodes in a full Li-ion cell configuration, providing an approximately 50% improvement inrate capacity retention over half-cell configurations of identicalelectrodes at 4000 mA/g.
机译:锂离子电池电极中的定向微米级蜂窝状孔是基于碳纳米纤维的喷涂法,采用逐层自组装方法制造的。通过优化(i)悬浮液中逃逸性双溶剂载体的体积比和(ii)印刷过程中的基材温度来控制每个印刷电极层的干燥行为,可自发创建穿过电极的自组装蜂窝孔道,并在大于20 cm×15 cm的集电器区域上可靠地进行。蜂窝孔结构在高充/放电电流密度下促进了有效的锂离子动力学。在蜂窝状电极中掺入高能量密度的硅微粒的最佳比例(2.5重量%),可在8000 mA / g的放电容量下增加4倍。然后,将喷涂的蜂窝状多孔电极作为负极与全锂离子电池配置中的相似喷涂的LiFePO4正极进行研究,可将锂离子电池的性能提高约50%在相同的半电池配置上提高容量保持率电极的电流为4000 mA / g。

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