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首页> 外文期刊>RSC Advances >Enhancing coulombic efficiency and rate capability of high capacity lithium excess layered oxide cathode material by electrocatalysis of nanogold
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Enhancing coulombic efficiency and rate capability of high capacity lithium excess layered oxide cathode material by electrocatalysis of nanogold

机译:通过纳米盘电常分提高高容量锂过量氧化物阴极材料的库仑效率和速率能力

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摘要

A Lithium-rich cathode material Li _(1.2) Mn _(0.56) Ni _(0.16) Co _(0.08) O _(2) modified with nanogold (Au@LMNCO) for lithium-ion (Li-ion) batteries was prepared using co-precipitation, solid-state reaction and surface treatment techniques. Au@LMNCO was prepared by thermally spraying gold on the surface of the lithium-rich cathode material (LMNCO). X-ray diffraction (XRD) and energy dispersive spectrometry (EDS) results indicate that Au was successfully integrated into the surface of LMNCO. The cyclic voltammogram of Au@LMNCO shows a significant reduction in the reaction overpotential compared to that of LMNCO, which was a result of the nanogold formation. The stable reversible capacity of the Au@LMNCO electrode was 249 mA h g ~(?1) , and it could be retained at 244 mA h g ~(?1) (98% retention) after 100 cycles at 0.5C. The coulombic efficiencies were over 98% except for the first five cycles. Moreover, Au@LMNCO also exhibited excellent rate capability. Even at a 5.0C rate, its discharge capacity was about 190 mA h g ~(?1) . The superior electrochemical performance can be attributed to its unique nanoplate characteristics, its structural stability, and the electrocatalytic activity of nanogold.
机译:用Nanogold(Au @ Lmnco)进行锂离子(锂离子)电池改性的富含锂的阴极材料Li _(1.2)Mn _(0.56)Ni _(0.08)O _(0.0.08)O _(2)是使用共沉淀,固态反应和表面处理技术制备。通过在富含锂的阴极材料(LMNCO)的表面上的热喷涂金制备AU @ LMNCO。 X射线衍射(XRD)和能量分散光谱(EDS)结果表明Au成功集成到LMNCO的表面中。与LMNCO相比,Au @ Lmnco的循环伏安图显示出反应过度的反应的显着降低,这是纳米形形成的结果。 Au @ lmnco电极的稳定可逆容量为249 mA H g〜(α1),并且在0.5℃下在100℃下循环后,它可以保留在244mA H g〜(α1)(98%的保留)。除前五个周期外,库仑效率超过98%。此外,AU @ LMNCO也表现出优异的速率能力。即使以5.0℃,其放电容量也为190 ma H g〜(?1)。卓越的电化学性能可归因于其独特的纳米板特征,其结构稳定性和纳米盘的电催化活性。

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