lower cost and is a promising cathode material currently under development. However
its electrochemical and structural stability is poor during cycling. Among the many modification methods
cation doping has been consistently proven to be an effective strategy for enhancing electrochemical performance. Herein
the NCM811 cathode material was modified by solid-phase reactions with Mg and Al doped. In addition
the corresponding mechanism of NCM811 cathode material-doped modification is explored by density functional theory (DFT) calculations
and we have extended this approach to other ternary cathode materials with different ratios and obtained universal laws. Combined with DFT calculations
the results show that Mg
2+
occupies the Li
+
site and reduces the degree of Li
+
/Ni
2+
mixture; Al
3+
acts as a structural support during charging and discharging to prevent structural collapse. The electrochemical properties were tested by an electrochemical workstation and the LAND system
and the results showed that the capacity retention rate increased to varying degrees from 63.66% to 69.87% and 89.05% for NCM811-Mg and NCM811-Al at room temperature after 300 cycles
respectively. This study provides a theoretical basis and design strategy for commercializing cationic-doped modification of ni
ckel-rich cathode materials.
关键词
Keywords
references
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Bio-templated graphitic carbon architectures enable high-rate and durable LiFePO4 cathodes for sustainable lithium-ion batteries
Dual-regulated Cu-doped MnO2nanowires confined in waste-derived carbon framework for high-performance aqueous zinc-ion batteries
Degradation performance and mechanism of plasma-activated persulfate for environmental persistent pollutants
Synergistic effect between nitrogen-doped sites and metal chloride for carbon supported extra-low mercury catalysts in acetylene hydrochlorination
相关作者
Chunzhong Li
Haifeng Yu
Zhaofeng Yang
Huawei Zhu
Hao Jiang
Urol K. Makhmanov
Li Bingbing
Xu Yue
相关机构
Key Laboratory for Ultrafine Materials of Ministry of Education, School of Chemical Engineering, East China University of Science and Technology
Shanghai Engineering Research Center of Hierarchical Nanomaterials, School of Materials Science and Engineering, East China University of Science and Technology
Institute of Ion-Plasma and Laser Technologies, Uzbekistan Academy of Sciences, Tashkent
Wuxi Xinmeicheng Steel Co., Yixing Environmental Science Park
School of Chemistry and Chemical Engineering, Nanjing University of Science and Technology