材料科学
离子
密度泛函理论
阴极
混合(物理)
扫描透射电子显微镜
电池(电)
原子单位
透射电子显微镜
X射线吸收光谱法
吸收光谱法
纳米技术
化学物理
物理化学
计算化学
光学
化学
热力学
物理
功率(物理)
有机化学
量子力学
作者
Shuai Liu,Xin Feng,Xuelong Wang,Xi Shen,Enyuan Hu,Ruijuan Xiao,Richeng Yu,Haitao Yang,Ningning Song,Zhaoxiang Wang,Xiao‐Qing Yang,Liquan Chen
标识
DOI:10.1002/aenm.201703092
摘要
Abstract The Li‐rich layer‐structured oxides are regarded one of the most promising candidates of cathode materials for high energy‐density Li‐ion batteries. However, the uninterrupted migration of the transition metal (TM) ions during cycling and the resultant continuous fading of their discharge potentials bring challenges to the battery design and impede their commercial applications. Various efforts have been taken to suppress the migration of the TM ions such as surface modification and elemental substitution, but no success has been achieved to date. Another strategy hereby is proposed to address these issues, in which the TM migration is promoted and the layered material is transformed to a rocksalt in the first few charge/discharge cycles by specially designing a novel Li‐rich layer‐structured Li 1.2 Mo 0.6 Fe 0.2 O 2 on the basis of density functional theory calculations. With such, the continuous falling of the discharge potential is detoured due to enhanced completion of the cation mixing. In‐depth studies such as aberration‐corrected scanning transmission electron microscopy confirm the drastic structural change at the atomic scale, and in situ X‐ray absorption spectroscopy and Mössbauer spectroscopy clarify its charge compensation mechanism. This new strategy provides revelation for the development of the Li‐rich layered oxides with mitigated potential decay and a longer lifespan.
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