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首页> 外文期刊>ChemElectroChem >Improving the Structural Stability of Li-Rich Layered Cathode Materials by Constructing an Antisite Defect Nanolayer through Polyanion Doping
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Improving the Structural Stability of Li-Rich Layered Cathode Materials by Constructing an Antisite Defect Nanolayer through Polyanion Doping

机译:通过聚膜掺杂构建防烧缺陷纳米层来改善富富型分层阴极材料的结构稳定性

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摘要

To mitigate the gradual phase transition and improve the structural stability of Li-rich layered cathode materials, an antisite defect nanolayer (transition-metal ions replacing Li+ in a Li slab) with a thickness of approximately 2 nm was induced on the surface of Li-1.16(Ni0.25Mn0.75)(0.84)O-2 by doping with boracic polyanions. It is found that the 2 and 3 mol% BO33- doped samples show excellent cycling stability with capacity retentions of 91.2 and 93.7%, respectively, after 300 cycles at 0.5 C. More importantly, the BO33- doping restrains the decay of discharge voltage upon cycling and has the prospect to overcome the fatal drawback of Li-rich layered oxides. The results demonstrate that the BO33- doping contributes to the generation of an antisite defect nanolayer on the surface, which hinders the formation of Li-ion vacancies and the continued migration of more transition-metal ions to the Li slab in a deep charging state. The antisite defect nanolayer clearly improves surface structural stability and inhibits the appearance of the amorphous domain in the bulk, which are favorable to maintain the facile lithium-diffusion pathways during cycling and improve the capacity retention and rate capability.
机译:为了减轻渐进的相变,提高富富锂层状阴极材料的结构稳定性,在Li的表面上诱导厚度为约2nm的厚度为约2nm的反电型缺陷纳米组(替代Li +的过渡金属离子) 1.16(Ni0.25mn0.75)(0.84)o-2通过掺杂硼酸多烷。发现2和3摩尔%BO33掺杂样品具有91.2和93.7%的容量保持优异的循环稳定性,在0.5℃下300次循环后,更重要的是,BO33掺杂限制了放电电压的衰减骑自行车并具有克服富含富含量的层状氧化物的致命缺点的前景。结果表明,BO33掺杂有助于在表面上产生抗筋缺陷纳米层,其阻碍了锂离子空位的形成,并在深度充电状态下延续地迁移到锂离子离子。防易缺陷纳米层清楚地提高了表面结构稳定性,并抑制了体积中的非晶结构域的外观,这有利于在循环期间维持容量锂 - 扩散途径,提高容量保持和速率能力。

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