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    Effect of Calcination Temperature and Oxygen-Assisted Coprecipitation on the Structural and Electrochemical Properties of Li-Rich Lix[Ni0.8Mn0.1Co0.1]O2 Cathode Materials

    Source: Journal of Electrochemical Energy Conversion and Storage:;2026:;volume( 023 ):;issue:004::page 359
    Author:
    Brahma, Sanjaya
    ,
    Lo, Chia-Hsin
    ,
    Naik, Ramakanta
    ,
    Huang, Jow-Lay
    ,
    Chang, Chia-Chin
    DOI: 10.1115/1.4072046
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. Lithium-rich layered oxide cathodes, Lix[Ni0.8Mn0.1Co0.1]O2, were synthesized via an oxygen-assisted coprecipitation method followed by calcination at 720 °C, 750 °C, and 780 °C. The introduction of O2 during coprecipitation facilitates in situ oxidation of Mn2+ to higher valence states, leading to Mn-enriched regions within the hydroxide precursor that form Li2MnO3-like domains in the layered structure upon calcination. The primary objective of this study was to systematically investigate the effect of calcination temperature on crystal structure, Li/Ni cation ordering, microstructure, and electrochemical performance. Structural analysis revealed that the 750 °C annealed sample exhibits the lowest Li/Ni disorder, optimal hexagonal ordering, and a porous nanosheet-based morphology, which together promote rapid lithium-ion diffusion. Electrochemical testing shows that this sample achieves the highest initial discharge capacity (∼145 mAh/g), excellent capacity retention (85.4% after 100 cycles), and good rate capability (77.5% retention at 5C). Samples annealed at 720 °C and 780 °C showed reduced performance due to incomplete crystallization and microstructural collapse, respectively. This work demonstrates that optimizing calcination temperature in combination with O2-assisted coprecipitation provides a scalable route to structurally robust lithium-rich NMC cathodes. While the initial capacity is lower than that of commercial NMC811, the study provides valuable insights into the interplay between synthesis conditions, structural ordering, and electrochemical behavior, highlighting design strategies for stable and reversible lithium-ion cathodes.
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      Effect of Calcination Temperature and Oxygen-Assisted Coprecipitation on the Structural and Electrochemical Properties of Li-Rich Lix[Ni0.8Mn0.1Co0.1]O2 Cathode Materials

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4315740
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    contributor authorBrahma, Sanjaya
    contributor authorLo, Chia-Hsin
    contributor authorNaik, Ramakanta
    contributor authorHuang, Jow-Lay
    contributor authorChang, Chia-Chin
    date accessioned2026-08-23T07:52:29Z
    date available2026-08-23T07:52:29Z
    date copyright2026/11/01
    date issued2026
    identifier issn2381-6872
    identifier otherjeecs-25-1249.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4315740
    description abstractAbstract. Lithium-rich layered oxide cathodes, Lix[Ni0.8Mn0.1Co0.1]O2, were synthesized via an oxygen-assisted coprecipitation method followed by calcination at 720 °C, 750 °C, and 780 °C. The introduction of O2 during coprecipitation facilitates in situ oxidation of Mn2+ to higher valence states, leading to Mn-enriched regions within the hydroxide precursor that form Li2MnO3-like domains in the layered structure upon calcination. The primary objective of this study was to systematically investigate the effect of calcination temperature on crystal structure, Li/Ni cation ordering, microstructure, and electrochemical performance. Structural analysis revealed that the 750 °C annealed sample exhibits the lowest Li/Ni disorder, optimal hexagonal ordering, and a porous nanosheet-based morphology, which together promote rapid lithium-ion diffusion. Electrochemical testing shows that this sample achieves the highest initial discharge capacity (∼145 mAh/g), excellent capacity retention (85.4% after 100 cycles), and good rate capability (77.5% retention at 5C). Samples annealed at 720 °C and 780 °C showed reduced performance due to incomplete crystallization and microstructural collapse, respectively. This work demonstrates that optimizing calcination temperature in combination with O2-assisted coprecipitation provides a scalable route to structurally robust lithium-rich NMC cathodes. While the initial capacity is lower than that of commercial NMC811, the study provides valuable insights into the interplay between synthesis conditions, structural ordering, and electrochemical behavior, highlighting design strategies for stable and reversible lithium-ion cathodes.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleEffect of Calcination Temperature and Oxygen-Assisted Coprecipitation on the Structural and Electrochemical Properties of Li-Rich Lix[Ni0.8Mn0.1Co0.1]O2 Cathode Materials
    typeJournal Paper
    journal volume23
    journal issue4
    journal titleJournal of Electrochemical Energy Conversion and Storage
    identifier doi10.1115/1.4072046
    journal fristpage359
    journal lastpage367
    page9
    treeJournal of Electrochemical Energy Conversion and Storage:;2026:;volume( 023 ):;issue:004
    contenttypeFulltext
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