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首页> 外文期刊>Scientific reports. >Carbon-Coated Honeycomb Ni-Mn-Co-O Inverse Opal: A High Capacity Ternary Transition Metal Oxide Anode for Li-ion Batteries
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Carbon-Coated Honeycomb Ni-Mn-Co-O Inverse Opal: A High Capacity Ternary Transition Metal Oxide Anode for Li-ion Batteries

机译:碳涂层蜂窝NI-MN-CO-O反蛋白质:锂离子电池的高容量三元过渡金属氧化物阳极

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摘要

We present the formation of a carbon-coated honeycomb ternary Ni-Mn-Co-O inverse opal as a conversion mode anode material for Li-ion battery applications. In order to obtain high capacity via conversion mode reactions, a single phase crystalline honeycombed IO structure of Ni-Mn-Co-O material was first formed. This Ni-Mn-Co-O IO converts via reversible redox reactions and Li2O formation to a 3D structured matrix assembly of nanoparticles of three (MnO, CoO and NiO) oxides, that facilitates efficient reactions with Li. A carbon coating maintains the structure without clogging the open-worked IO pore morphology for electrolyte penetration and mass transport of products during cycling. The highly porous IO was compared in a Li-ion half-cell to nanoparticles of the same material and showed significant improvement in specific capacity and capacity retention. Further optimization of the system was investigated by incorporating a vinylene carbonate additive into the electrolyte solution which boosted performance, offering promising high-rate performance and good capacity retention over extended cycling. The analysis confirms the possibility of creating a ternary transition metal oxide material with binder free accessible open-worked structure to allow three conversion mode oxides to efficiently cycle as an anode material for Li-ion battery applications.
机译:我们介绍了碳涂层蜂窝三元Ni-Mn-Co-Co-Co-Co-O反向蛋白作为转换模式阳极材料的锂离子电池应用。为了通过转化模式反应获得高容量,首先形成Ni-Mn-Co-O材料的单相结晶蜂窝状IO结构。该Ni-Mn-Co-O IO通过可逆的氧化还原反应和Li2O形成转化为三种(MNO,CoO和NiO)氧化物的3D结构化基质组件,这有利于与Li有效的反应。碳涂层保持该结构而不堵塞循环期间产品的电解质渗透和大规模运输的开放式IO孔形态。将高度多孔的IO与相同材料的纳米颗粒进行比较,并显示出特定容量和容量保留的显着改善。通过将亚乙二醇酯添加剂掺入电解质溶液中,研究了该系统的进一步优化,该电解质溶液提高了性能,提供了有希望的高速性能和良好的循环循环能力保持。该分析证实了用粘合剂可自由的开放式结构产生三元过渡金属氧化物材料的可能性,以允许三种转化模式氧化物作为锂离子电池应用的阳极材料有效地循环。

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