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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >LiNi0.29Co0.33Mn0.38O2 polyhedrons with reduced cation mixing as a high-performance cathode material for Li-ion batteries synthesized via a combined co-precipitation and molten salt heating technique
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LiNi0.29Co0.33Mn0.38O2 polyhedrons with reduced cation mixing as a high-performance cathode material for Li-ion batteries synthesized via a combined co-precipitation and molten salt heating technique

机译:减少阳离子混合的LiNi0.29Co0.33Mn0.38O2多面体,是通过共沉淀和熔融盐加热技术合成的锂离子电池的高性能正极材料

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摘要

Layer-structured LiNi0.29Co0.33Mn0.38O2 as a cathode material for Lithium-ion batteries (LIBs) was synthesized by a facile combined co-precipitation and molten salt heating technique. The effects of precipitate pre-calcination on the morphology, structure and electrochemical performance of the products were investigated systematically. Based on the FESEM, TEM, BET specific surface area and XRD results of the fresh and calcined precipitates, the physically mixed nanoplate-shaped metal hydrates of the fresh precipitate could transform to a spinel-type solid solution with a porous nanoplate morphology after the pre-calcination of the precipitate, demonstrating that the calcined precipitate would provide a larger interfacial reaction area in the second-step reaction, thus facilitating the formation of LiNixCoyMn1-x-yO2 solid solution. The resulting sample LiNi0.29Co0.33Mn0.38O2 prepared by the calcined precipitate (OP-900) at 900 degrees C showed a first discharge capacity of 177 mA h g(-1) at a rate of 0.2 C and a capacity retention of 85.9% after 100 cycles at a rate of 1.0 C, which are higher than those of the similar electrode prepared by the fresh precipitate at the same temperature (HP-900:165 mA h g(-1), 79.3%), due to a reduced cation mixing in the oxide lattice of the OP-900 sample. This phenomenon indicates that the pre-calcination of the precipitate is preferred for the synthesis of LiNixCoyMn1-x-yO2 based on the co-precipitation method. (C) 2016 Elsevier B.V. All rights reserved.
机译:通过简便的共沉淀和熔盐加热技术,合成了层状结构的LiNi0.29Co0.33Mn0.38O2作为锂离子电池(LIBs)的正极材料。系统地研究了沉淀物预煅烧对产物形态,结构和电化学性能的影响。根据新鲜和煅烧沉淀物的FESEM,TEM,BET比表面积和XRD结果,经过预制备后,新鲜沉淀物的物理混合纳米板状金属水合物可转变为具有多孔纳米板形态的尖晶石型固溶体。 -沉淀的-煅烧,表明煅烧的沉淀物将在第二步反应中提供更大的界面反应面积,从而促进LiNixCoyMn1-x-yO2固溶体的形成。在900摄氏度下通过煅烧沉淀物(OP-900)制备的所得样品LiNi0.29Co0.33Mn0.38O2以0.2 C的速率显示177 mA hg(-1)的首次放电容量和85.9%的容量保持率在100个循环中以1.0 C的速率放电后,由于阳离子减少,该速率高于在相同温度下由新鲜沉淀物制备的类似电极(HP-900:165 mA hg(-1),79.3%)在OP-900样品的氧化物晶格中混合。这种现象表明沉淀物的预煅烧对于基于共沉淀法的LiNixCoyMn1-x-yO2的合成是优选的。 (C)2016 Elsevier B.V.保留所有权利。

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