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首页> 外文期刊>Bulletin of the Korean Chemical Society >Roles of Fluorine-doping in Enhancing Initial Cycle Efficiency and SEI Formation of Li-, Al-cosubstituted Spinel Battery Cathodes
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Roles of Fluorine-doping in Enhancing Initial Cycle Efficiency and SEI Formation of Li-, Al-cosubstituted Spinel Battery Cathodes

机译:氟掺杂在增强锂,铝共取代尖晶石电池阴极的初始循环效率和SEI形成中的作用

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摘要

Fluorine-doping on the Li_(1+x)Mn_(1.9-x)Al_(0.1)O4 spinel cathode materials is found to alter crystal shape, and enhance initial interfacial reactivity and solid electrolyte interphase (SEI) formation, leading to improved initial coulombic efficiency in the voltage region of 3.3-4.3 V vs. Li/Li~+ in the room temperature electrolyte of 1 M LiPF6/EC:EMC. SEM imaging reveals that the facetting on higher surface energy plane of (101) is additionally developed at the edges of an octahedron that is predominantly grown with the most thermodynamically stable (111) plane, which enhances interfacial reactivity. Fluorine-doping also increases the amount of interfacially reactive Mn~(3+) on both bulk and surface for charge neutrality. Enhanced interfacial reactivity by fluorine-doping attributes instant formation of a stable SEI layer and improved initial cyclic efficiency. The data contribute to a basic understanding of the impacts of composition on material properties and cycling behavior of spinel-based cathode materials for lithium-ion batteries.
机译:发现在Li_(1 + x)Mn_(1.9-x)Al_(0.1)O4尖晶石正极材料上掺氟会改变晶体形状,并增强初始界面反应性和固体电解质界面(SEI)的形成,从而改善初始在1M LiPF6 / EC:EMC室温电解液中,相对于Li / Li〜+的3.3-4.3 V电压范围内的库仑效率。 SEM成像显示(101)的较高表面能平面上的刻面在主要以最热力学稳定(111)平面生长的八面体的边缘处进一步发展,从而增强了界面反应性。氟掺杂还增加了本体和表面上的界面反应性Mn〜(3+)的数量,以实现电荷中和。通过氟掺杂增强的界面反应性归因于稳定的SEI层的即时形成和提高的初始循环效率。数据有助于基本了解组成对锂离子电池尖晶石基正极材料的材料性能和循环行为的影响。

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