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Title: | Hysteresis abated P2-type NaCoO2cathode reveals highly reversible multiple phase transitions for high-rate sodium-ion batteries |
Authors: | Reddy Boddu, Venkata Rami Sinha, Lichchhavi Yadav, Subhash Chand Shirage, Parasharam Maruti |
Keywords: | Calcination;Cathodes;Crystal atomic structure;Digital storage;Hysteresis;Metal ions;Morphology;Nanocrystalline materials;Sodium compounds;Sodium metallography;Sol-gels;Surface morphology;Calcination temperature;Charge- discharge rate;Charge-discharge cycle;Coulombic efficiency;Hexagonal crystal structure;Hexagonal crystals;Powder X ray diffraction;Well-ordered structure;Sodium-ion batteries;crystal structure;electrode;hysteresis;inorganic compound;morphology;phase transition;retention |
Issue Date: | 2021 |
Publisher: | Royal Society of Chemistry |
Citation: | Reddy Boddu, V. R., Palanisamy, M., Sinha, L., Yadav, S. C., Pol, V. G., & Shirage, P. M. (2021). Hysteresis abated P2-type NaCoO2cathode reveals highly reversible multiple phase transitions for high-rate sodium-ion batteries. Sustainable Energy and Fuels, 5(12), 3219-3228. doi:10.1039/d1se00490e |
Abstract: | Despite the multiple phase transitions that occur during Na+ ion intercalation and deintercalation, an enhanced charge-discharge rate and a long cycle life are achieved with a hexagonal shaped P2-type NaCoO2 cathode for sodium-ion batteries (SIBs). The hysteresis abated crystalline phase was obtained by tuning the calcination temperature/time factors for the citric acid assisted sol-gel technique precursor. Powder X-ray diffraction data confirmed that the studied material belongs to a hexagonal crystal system and that, among the materials, the material synthesized at 750 °C/28 h in an air atmosphere in particular showed pure phase formation with an ordered structure. Furthermore, the local atomic arrangement of the synthesized NaCoO2 cathodes was monitored using a Raman spectroscopy technique, revealing five active vibration modes of E1g(O), E2g(O), 2 E2g (Na), and A1g(O), in NaCoO2 to confirm the existence of the hexagonal crystal structure. The surface morphology of the designed materials exhibited a hexagonal shape with a size of 2-5 μm. By tuning the calcination temperature/time factors, the optimized critical parameters of the P2-type NaCoO2 cathode were 750 °C and 28 h, resulting in a well-ordered structure, which enhances Na+ ion storage capacity at a high-rate. Thus, a hysteresis abated P2-type NaCoO2 cathode demonstrated high-rate, stable charge-discharge cycles with 79 mA h g-1 capacity at a rate of 1C with a retention of 99% coulombic efficiency for the 100th cycle. © The Royal Society of Chemistry. |
URI: | https://doi.org/10.1039/d1se00490e https://dspace.iiti.ac.in/handle/123456789/7450 |
ISSN: | 2398-4902 |
Type of Material: | Journal Article |
Appears in Collections: | Department of Metallurgical Engineering and Materials Sciences |
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