PMoO 12 @NH 2 -MIL-53(Fe)-derived iron molybdate/iron oxide with nitrogen-doped carbon nanocomposites as anodes for lithium-ion batteries

Yucai Liang,Jiahao Lu,Yilie Zhao,Rentian Chen, Xingtong Guo,Mengting Wang,Sijia Wang, Qing Huang,Wenjia Zhao, Changchun Xu,Tao Wei

Ionics(2024)

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摘要
Transition metal oxides (TMOs) possess the distinct advantage of high theoretical specific capacity and are considered as one of the promising alternatives to carbon-based anode materials for lithium-ion batteries. However, the significant volume expansion experienced by TMOs during lithiation and delithiation processes leads to rapid capacity fading, thereby limiting their widespread applications. In this study, we synthesized PMoO 12 @NH 2 -MIL-53(Fe) precursors through a solvothermal method followed by high-temperature treatment to obtain FeMoO 4 /Fe 2 O 3 -NC nanocomposites. The inclusion of FeMoO 4 as a crucial component not only provides a large capacity but also enhances the performance due to the synergistic effects with Fe 2 O 3 . The resulting multicomponent FeMoO 4 /Fe 2 O 3 -NC nanoparticles exhibit exceptional cycling stability and rate capability. Under optimized conditions, the specific capacity of FeMoO 4 /Fe 2 O 3 -NC can be maintained at approximately 1021 mAh g −1 after 100 cycles at a current density of 100 mA g −1 , while achieving an average specific capacity of up to 862 mAh g −1 even under high current densities such as 500 mA g −1 . In conclusion, the research potential of FeMoO 4 /Fe 2 O 3 -NC anodes for lithium-ion batteries is worth more attention.
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关键词
Metal organic frameworks (MOFs),Transition metal oxides (TMOs),FeMoO4,Anodes,Lithium-ion batteries
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