Xinyu Zhu, Luqi Hao, Yongjian Li, Lai Chen, Qing Huang, Yun Lu, Ning Li, Yuefeng Su
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引用次数: 0
摘要
层状富锂氧化物阴极能够在电荷补偿过程中激活晶格氧阴离子的氧化还原作用,并因其独特的构型而提供超过 250 mAh/g 的超高比容量,因此作为锂离子电池的候选阴极而备受关注。然而,如何更好地稳定体格氧框架和表面结构,减缓氧的释放,仍然是开发高性能富锂材料的主要瓶颈。外层 d0 电子构型的过渡金属离子具有可畸变构型,能适应材料的局部结构和化学环境,进而提高结构的稳定性。本研究采用 d0 过渡金属 Ti4+ 作为掺杂元素,以改善富锂材料的化学和结构稳定性、容量保持率以及锂离子扩散动力学。通过同步辐射软 X 射线吸收光谱、XRD、XPS 和电化学测试,揭示了 Ti 在材料改性中的作用。结构稳定性的改善可归因于钛的掺杂能调整 O2p 和 TM3d 的杂化,从而调节体格氧和表面氧空位的局部电子结构。希望这项研究能为开发高性能锂离子电池阴极材料带来启示。
Regulating electronic structure of anionic oxygen by Ti4+ doping to stabilize layered Li-rich oxide cathodes for Li-ion batteries
Layered Li-rich oxide cathodes enable to activate lattice oxygen anions redox in the charge compensation process and provide superior high specific capacity over 250 mAh/g due to their unique configuration, and thus attracting great attentions as promising cathode candidates for Li-ion batteries. However, how to better stabilize the bulk lattice oxygen framework and surface structure, and slow down the release of oxygen, is still major bottleneck to develop high performance Li-rich materials. Transition metal ions with outer d0 electronic configuration have distortable configuration, which can accommodate the local structure and chemical environment of the material, and then improve structural stability. Herein this work, the d0 transition metal Ti4+ is used as doping element to improve the chemical and structural stability, capacity retention and lithium ion diffusion kinetics of Li-rich material. The role of Ti in the material modification is revealed through synchrotron-based soft X-ray absorption spectroscopy, XRD, XPS and electrochemical tests. The improvement in structural stability can be attributed to that Ti doping can adjust the hybridization of O2p and TM3d to regulate the local electronic structure of both bulk lattice oxygen and surface oxygen vacancies. It is hoped that this work should shed light on the development of high-performance cathode materials for Li-ion Batteries.