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A Study on the Microstructure Regulation Effect of Niobium Doping on LiNi 0.88 Co 0.05 Mn 0.07 O 2 and the Electrochemical Performance of the Composite Material under High Voltage.
- Source :
-
Materials (Basel, Switzerland) [Materials (Basel)] 2024 Apr 30; Vol. 17 (9). Date of Electronic Publication: 2024 Apr 30. - Publication Year :
- 2024
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Abstract
- High-nickel ternary materials are currently the most promising lithium battery cathode materials due to their development and application potential. Nevertheless, these materials encounter challenges like cation mixing, lattice oxygen loss, interfacial reactions, and microcracks. These issues are exacerbated at high voltages, compromising their cyclic stability and safety. In this study, we successfully prepared Nb <superscript>5+</superscript> -doped high-nickel ternary cathode materials via a high-temperature solid-phase method. We investigated the impact of Nb <superscript>5+</superscript> doping on the microstructure and electrochemical properties of LiNi <subscript>0.88</subscript> Co <subscript>0.05</subscript> Mn <subscript>0.07</subscript> O <subscript>2</subscript> ternary cathode materials by varying the amount of Nb <subscript>2</subscript> O <subscript>5</subscript> added. The experimental results suggest that Nb <superscript>5+</superscript> doping does not alter the crystal structure but modifies the particle morphology, yielding radially distributed, elongated, rod-like structures. This morphology effectively mitigates the anisotropic volume changes during cycling, thereby bolstering the material's cyclic stability. The material exhibits a discharge capacity of 224.4 mAh g <superscript>-1</superscript> at 0.1C and 200.3 mAh g <superscript>-1</superscript> at 1C, within a voltage range of 2.7 V-4.5 V. Following 100 cycles at 1C, the capacity retention rate maintains a high level of 92.9%, highlighting the material's remarkable capacity retention and cyclic stability under high-voltage conditions. The enhancement of cyclic stability is primarily due to the synergistic effects caused by Nb <superscript>5+</superscript> doping. Nb <superscript>5+</superscript> modifies the particle morphology, thereby mitigating the formation of microcracks. The formation of high-energy Nb-O bonds prevents oxygen precipitation at high voltages, minimizes the irreversibility of the H2-H3 phase transition, and thereby enhances the stability of the composite material at high voltages.
Details
- Language :
- English
- ISSN :
- 1996-1944
- Volume :
- 17
- Issue :
- 9
- Database :
- MEDLINE
- Journal :
- Materials (Basel, Switzerland)
- Publication Type :
- Academic Journal
- Accession number :
- 38730933
- Full Text :
- https://doi.org/10.3390/ma17092127