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Hierarchical Na(3)V(2)(PO(4))(2)F(3) Microsphere Cathodes for High-Temperature Li-Ion Battery Application
[Image: see text] Sodium superionic conductor (NASICON)-structured Na(3)V(2)(PO(4))(2)F(3) cathode materials have received vast attention in the high-temperature storage performance due to their structural and thermal stability. Herein, hierarchical Na(3)V(2)(PO(4))(2)F(3) microspheres (NVPF-HMSs) c...
Autores principales: | , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2022
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9352260/ https://www.ncbi.nlm.nih.gov/pubmed/35936407 http://dx.doi.org/10.1021/acsomega.2c02558 |
Sumario: | [Image: see text] Sodium superionic conductor (NASICON)-structured Na(3)V(2)(PO(4))(2)F(3) cathode materials have received vast attention in the high-temperature storage performance due to their structural and thermal stability. Herein, hierarchical Na(3)V(2)(PO(4))(2)F(3) microspheres (NVPF-HMSs) consisting of nanocubes were designed by a one-pot facial solvothermal method. The hierarchical Na(3)V(2)(PO(4))(2)F(3) microsphere size is 2–3 μm, which is corroborated by FE-SEM and HR-TEM analyses. The NVPF-HMSs have been demonstrated as a cathode in Li-ion batteries at both low and elevated temperatures (25 and 55 °C, respectively). The NVPF-HMS cathode in a Li-ion cell exhibits reversible capacities of 119 mA h g(–1) at 0.1 C and 85 mA h g(–1) at 1 C with an 82% retention after 250 cycles at 25 °C. At elevated temperatures, the NVPF-HMS cathode exhibits a superior capacity of 110 mA h g(–1) at 1 C along with a retention of 90% after 150 cycles at 55 °C. Excellent capacity and cyclability were achieved at 55 °C due to its hierarchical morphology with a robust crystal structure, low charge-transfer resistance, and improved ionic diffusivity. The Li-ion storage performance of the NVPF-HMS cathode material at elevated temperatures was analyzed for the first time to understand the high-temperature storage property of the material, and it was found to be a promising candidate for elevated-temperature energy storage applications. |
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