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用于先进锂电池的纳米结构高能阴极材料。

Nanostructured high-energy cathode materials for advanced lithium batteries.

机构信息

Department of WCU Energy Engineering, Hanyang University, Seoul 133-791, South Korea.

出版信息

Nat Mater. 2012 Nov;11(11):942-7. doi: 10.1038/nmat3435. Epub 2012 Oct 7.

Abstract

Nickel-rich layered lithium transition-metal oxides, LiNi(1-x)M(x)O(2) (M = transition metal), have been under intense investigation as high-energy cathode materials for rechargeable lithium batteries because of their high specific capacity and relatively low cost. However, the commercial deployment of nickel-rich oxides has been severely hindered by their intrinsic poor thermal stability at the fully charged state and insufficient cycle life, especially at elevated temperatures. Here, we report a nickel-rich lithium transition-metal oxide with a very high capacity (215 mA h g(-1)), where the nickel concentration decreases linearly whereas the manganese concentration increases linearly from the centre to the outer layer of each particle. Using this nano-functional full-gradient approach, we are able to harness the high energy density of the nickel-rich core and the high thermal stability and long life of the manganese-rich outer layers. Moreover, the micrometre-size secondary particles of this cathode material are composed of aligned needle-like nanosize primary particles, resulting in a high rate capability. The experimental results suggest that this nano-functional full-gradient cathode material is promising for applications that require high energy, long calendar life and excellent abuse tolerance such as electric vehicles.

摘要

富镍层状锂过渡金属氧化物,LiNi(1-x)M(x)O(2) (M = 过渡金属),由于其比容量高且成本相对较低,一直是可充电锂电池用高能量阴极材料的研究热点。然而,富镍氧化物的商业应用受到其在完全充电状态下固有较差的热稳定性和循环寿命不足的严重阻碍,尤其是在高温下。在此,我们报告了一种具有非常高容量(215 mA h g(-1))的富镍锂过渡金属氧化物,其中镍浓度从颗粒中心到外层呈线性下降,而锰浓度呈线性增加。通过这种纳米功能全梯度方法,我们能够利用富镍核的高能量密度和富锰外层的高热稳定性和长寿命。此外,这种阴极材料的微米级二次颗粒由排列整齐的针状纳米尺寸初级颗粒组成,从而具有高倍率性能。实验结果表明,这种纳米功能全梯度阴极材料有望应用于需要高能量、长日历寿命和出色的耐滥用性的领域,如电动汽车。

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