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首页> 外文期刊>Angewandte Chemie >Hierarchical Surface Atomic Structure of a Manganese-Based Spinel Cathode for Lithium-Ion Batteries
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Hierarchical Surface Atomic Structure of a Manganese-Based Spinel Cathode for Lithium-Ion Batteries

机译:锂离子电池锰基尖晶石阴极的分层表面原子结构

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摘要

The increasing use of lithium-ion batteries (LIBs) in high-power applications requires improvement of their high-temperature electrochemical performance, including their cyclability and rate capability. Spinel lithium manganese oxide (LiMn2O4) is a promising cathode material because of its high stability and abundance. However, it exhibits poor cycling performance at high temperatures owing to Mn dissolution. Herein we show that when stoichiometric lithium manganese oxide is coated with highly doped spinels, the resulting epitaxial coating has a hierarchical atomic structure consisting of cubic-spinel, tetragonal-spinel, and layered structures, and no interfacial phase is formed. In a practical application of the coating to doped spinel, the material retained 90% of its capacity after 800cycles at 60 degrees C. Thus, the formation of an epitaxial coating with a hierarchical atomic structure could enhance the electrochemical performance of LIB cathode materials while preventing large losses in capacity.
机译:锂离子电池(LIB)在大功率应用中的日益增长的使用要求改善其高温电化学性能,包括其循环能力和倍率性能。尖晶石型锂锰氧化物(LiMn2O4)由于其高稳定性和丰度而很有希望成为正极材料。然而,由于Mn的溶解,它在高温下表现出较差的循环性能。在此我们表明,当化学计量的锰酸锂用高掺杂的尖晶石涂层时,所得到的外延涂层具有由立方-尖晶石,四方-尖晶石和层状结构组成的分层原子结构,并且没有形成界面相。在将涂层应用于掺杂尖晶石的实际应用中,该材料在60摄氏度下经过800次循环后,仍保留了其90%的容量。因此,形成具有分级原子结构的外延涂层可以增强LIB阴极材料的电化学性能,同时防止容量损失很大。

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