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Abstract
This study presents a novel material synthesis approach utilizing a terephthalic acid–based metal–organic framework as a precursor and using an ethanol-assisted hydrothermal treatment to produce a high-performance Fe-doped LiNi0.5Mn1.5O4 (LNMO) cathode material. This strategy yields a well-crystallized spinel structure with uniformly distributed transition-metal ions. Additionally, the appropriate quantity of Fe dopant can achieve the desired Mn3+/Mn4+ ratio, level of structural disordering, and crystal-phase purity for Fe-doped LNMO. The synthesis process also aids in forming an amorphous Li2CO3 surface layer, approximately 1-nm thick, which protects the active material from excessive reaction with electrolyte. The typical Fe-doped LNMO cathode (S-05) exhibits superior performance compared to a commercialized LNMO counterpart. It delivers an initial discharge capacity of 135/mAhg at 1C with exceptional cycling stability over 500 cycles (capacity retention of 90 %) under high voltage (5.0 V vs. Li+/Li). Furthermore, its rate capability significantly improves, with a capacity retention of 85% (5C/0.2C). This enhanced performance aligns with evidence of activated Ni2+/Ni3+/Ni4+ redox reactions and suppressed cathode electrolyte interphase resistance, leading to promoted Li+ diffusion. Moreover, it is found that the cathode helps alleviate electrolyte degradation at high voltages by inhibiting the formation of singlet oxygen in the electrolyte.
Original language | English |
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Article number | 101711 |
Journal | Materials Today Energy |
Volume | 46 |
DOIs | |
State | Published - Dec 2024 |
Keywords
- 5 V cathode material
- Fe doping
- LiNiMnO spinel
- Lithium-ion battery
- Metal-organic framework
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Dive into the research topics of 'Simultaneous structure and surface engineering of metal-organic framework derived LiNi0.5-xFe2xMn1.5-xO4 cathode material for improving high voltage performance of lithium-ion batteries'. Together they form a unique fingerprint.Projects
- 1 Finished
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Battery Degradation Analysis and Electrolyte Development for High-Voltage Lithium Ion Battery Composed of Self-Standing Electrodes(3/3)
Liu, Y.-H. (PI)
1/08/22 → 31/07/23
Project: Research