Zhang Shiwei, Wang Jianchuan, Tao Xiaoma, Yan Xiangyu, Du Yong, Seifert Hans J, Lei Ting
State Key Laboratory of Powder Metallurgy, Central South University, 410083, Changsha, China.
School of Physical Science and Technology, Guangxi University, 530004, Nanning, China.
Phys Chem Chem Phys. 2023 Jan 18;25(3):2282-2293. doi: 10.1039/d2cp04271a.
The poor cycling performance of Li-rich cathode LiMnO, a promising cathode for next-generation Li-ion batteries, limits its commercial applications. Transition metal (TM) doping is widely applied to optimize the electrochemical performance of LiMnO, where the d valence electrons of the TM play a crucial role. Nevertheless, the rule of the doping effect of TM with various numbers of d electrons has not been well summarized. In this work, 4d-TMs (Zr, Nb, Mo, Ru and Rh) are selected as dilute doping elements for LiMnO to evaluate their effect on the performance of LiMnO through first-principles calculations. The calculations indicate that as the number of 4d electrons increases, the doped TM transforms from an electrochemically inert state (Zr and Nb) to an electrochemically active state (Mo, Ru and Rh) in LiMnO. Meanwhile, the orbital hybridization between the 4d electrons of the TM and the 2p electrons of O becomes stronger from Zr to Rh, which promotes the co-oxidation of the TM and O for charge compensation and alleviates the excessive oxidation of O, thus enhancing the stability of O. Moreover, the oxidation of the doped TM and lattice Mn during charging can trigger a decrease in the initial average delithiation potential. Although the 4d-TMs exhibit slight promoting or inhibiting effects on Li diffusion, no obvious rule related to the number of d electrons has been found. Our work highlights the rule of the doping effect of TMs with different 4d electrons on the electrochemical performance of LiMnO and would facilitate a better design of LiMnO cathode materials.
富锂正极材料LiMnO在下一代锂离子电池中是一种很有前景的正极材料,但其较差的循环性能限制了它的商业应用。过渡金属(TM)掺杂被广泛用于优化LiMnO的电化学性能,其中TM的d价电子起着关键作用。然而,具有不同数量d电子的TM的掺杂效应规律尚未得到很好的总结。在这项工作中,选择4d过渡金属(Zr、Nb、Mo、Ru和Rh)作为LiMnO的稀掺杂元素,通过第一性原理计算来评估它们对LiMnO性能的影响。计算结果表明,随着4d电子数量的增加,掺杂的TM在LiMnO中从电化学惰性状态(Zr和Nb)转变为电化学活性状态(Mo、Ru和Rh)。同时,从Zr到Rh,TM的4d电子与O的2p电子之间的轨道杂化变强,这促进了TM和O的共氧化以进行电荷补偿,并减轻了O的过度氧化,从而提高了O的稳定性。此外,充电过程中掺杂的TM和晶格Mn的氧化会导致初始平均脱锂电位降低。虽然4d过渡金属对Li扩散表现出轻微的促进或抑制作用,但尚未发现与d电子数量相关的明显规律。我们的工作突出了具有不同4d电子的TM对LiMnO电化学性能的掺杂效应规律,将有助于更好地设计LiMnO正极材料。