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The design and synthesis of spinel one-dimensional multi-shelled nanostructures for Li-ion batteries

机译:的设计与合成尖晶石一维multi-shelled为锂离子电池纳米结构

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摘要

The rational design, synthesis, and massive production of one-dimensional (1D) spinel composite oxides with multi-shelled nanostructures are critical for the realization of highly efficient energy conversion and storage. However, owing to the limitations of the synthetic methods, the 1D multi-shelled nanostructures, especially for multi-element oxides and binary-metal oxides, have been rarely fabricated. Herein, we design a facile and general method to fabricate 1D spinel composite oxides with complex architectures. It is found that the concentration of the precursor polymer PAN can control the structures of the products at optimal heating rate, including hollow nanofibers, wire-in-tube nanofibers, and tube-in-tube nanofibers. This technique could be extended to various inorganic multi-element oxides and binary-metal oxides. Moreover, numerous twin boundaries (TBs) are found to form in the Co0.5Ni0.5Fe2O4 tube-in-tube nanofibers. Benefiting from both large porosity and TBs structures, the tube-in-tube hollow nanostructures are measured to possess superior electrochemical performances with high energy and stability in lithium-ion storage.
机译:合理的设计、合成和巨大的一维(1 d)尖晶石的生产复合氧化物multi-shelled为实现纳米结构是至关重要的高效的能源转换和存储。1 d multi-shelled合成方法纳米结构,特别是对于多氧化物和binary-metal氧化物,一直很少编造的。一般方法制造1 d尖晶石复合氧化物与复杂的架构。聚合物前体的浓度锅可以控制产品的结构最优升温速率,包括中空的纳米纤维、纳米碳纤维wire-in-tube和tube-in-tube纳米纤维。扩展到各种无机多元素氧化物和binary-metal氧化物。无数双边界(TBs)被发现在Co0.5Ni0.5Fe2O4 tube-in-tube纳米纤维。受益于两大孔隙度和TBs结构,tube-in-tube空洞测量纳米结构具有优越的与高能源和电化学性能稳定的锂离子存储。

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