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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Synergic coating and doping effects of Ti-modified integrated layered-spinel Li1.2Mn0.75Ni0.25O2+delta as a high capacity and long lifetime cathode material for Li-ion batteries
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Synergic coating and doping effects of Ti-modified integrated layered-spinel Li1.2Mn0.75Ni0.25O2+delta as a high capacity and long lifetime cathode material for Li-ion batteries

机译:Ti改性综合分层尖晶石Li1.2Mn0.75Ni0.25O2 + Delta作为锂离子电池的高容量和长寿命阴极材料的协同涂层和掺杂效应

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An integrated layered-spinel material with a nominal composition of (1 - x) Li1.2Mn0.6Ni0.2O2 center dot xLiMn(1.5)Ni(0.5)O(4) (0.15 x 0.3) and crystal defects has been found to be a promising cathode material with a high capacity of 280 mA h g(-1). However, capacity fading arising from Mn2+ dissolution occurred at low voltages and long cycling times. To improve the cycling stability while preserving the advantages of this cathode material, a synergic coating and doping approach was studied. This method yields a coating with a similar, but more stable, structure to that of the pristine sample. This coating is achieved by the bulk doping of the surface while maintaining the ratio of layered to spinel phases. The coating layer had a thickness of 12 to 18 nm, which increased with increasing Ti doping, and protected the sample at low voltages while maintaining the ion and charge transport channels on the surface. The Ti-doped sample enhanced the capacity retention by up to 97% after 100 cycles at C/10 and 89% after 200 cycles at 1C compared to 75% and 74% of the pristine sample, respectively. The optimized sample delivered a stable capacity of 270, 250, and 145 mA h g(-1) at C/20, C/10, and 1C respectively. This study provides an effective approach to improve the cycling performance of integrated spinel-layered cathode materials.
机译:具有(1 - x)Li1.2Mn0.6Ni0.2O2中心点Xlimn(1.5)Ni(0.5)O(4)(0.15)和晶体缺陷的标称组成的集成分层尖晶石材料被发现是具有高容量为280 mA Hg(-1)的承诺阴极材料。然而,由MN2 +溶解产生的容量衰落发生在低电压和长循环时间。为了改善保持该阴极材料的优点的同时提高循环稳定性,研究了协同涂层和掺杂方法。该方法产生与原始样品相似但更稳定的结构的涂层。通过表面的体积掺杂来实现该涂层,同时保持分层与尖晶石相的比率。涂层的厚度为12至18nm,随着Ti掺杂的增加而增加,并在低电压下保护样品,同时保持表面上的离子和电荷传输通道。 Ti掺杂的样品在1℃下在C / 10的100次循环后提高了高达97%的容量保持率为97%,而在1C的200次循环和75%和74%的原始样品中分别为75%和74%。优化的样品分别在C / 20,C / 10和1C下稳定地提供270,250和145mA H(-1)的容量。本研究提供了一种有效的方法来改善集成尖晶石层状阴极材料的循环性能。

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