Ma Quanxin, Wang Yuqin, Lai Fulin, Meng Junxia, Dmytro Sydorov, Zhou Lingfei, Yang Mengqian, Zhang Qian, Zhong Shengwen
Key Laboratory of Power Battery and Materials, Faculty of Materials Metallurgy and Chemistry, Jiangxi University of Science and Technology, Ganzhou, 341000, China.
Far East Battery, FEB Research Institute, Yichun, 336000, China.
Small Methods. 2022 Jun;6(6):e2200255. doi: 10.1002/smtd.202200255. Epub 2022 May 6.
Nickel-rich layered oxides are one of the most promising cathode candidates for next-generation high-energy-density lithium-ion batteries. However, due to similar ion radius between Li and Ni (0.76 and 0.69 Å), the Li /Ni mixing phenomenon seriously hinders the migration of Li and increases kinetic barrier of Li diffusion, resulting in limited rate capability. In this work, the introduction of Ce to effectively improve electrochemical properties of Ni-rich cathode materials is proposed. The LiNi Co Al O (LNCA) is modified with an additional precursor oxidization process using an appropriate amount of (NH ) Ce(NO ) . The Ce(NO ) easily obtains electrons and generates reduction reactions, while Ni(OH) is prone to electron loss and oxidation reaction. The participation of (NH ) Ce(NO ) can promote the oxidation of Ni to Ni , thereby reducing the Li /Ni mixing and increasing the structural stability of LNCA samples. Ce cation doping can impede Li /Ni mixing of LNCA cathode materials upon the long-term cycles. Both rate performance and long-term cyclability of Li[Ni Co Al ] Ce O (LNCA-Ce0.03) sample are significantly improved. Besides, a practical pouch cell based on the cathode presents sufficient gravimetric energy density (≈300 Wh kg ) and cycling stability (capacity retention of 81.3% after 500 cycles at 1 C).
富镍层状氧化物是下一代高能量密度锂离子电池最有前景的正极候选材料之一。然而,由于Li和Ni的离子半径相近(分别为0.76 Å和0.69 Å),Li/Ni混排现象严重阻碍了Li的迁移,增加了Li扩散的动力学势垒,导致倍率性能受限。在本工作中,提出引入Ce以有效改善富镍正极材料的电化学性能。采用适量的(NH₄)₂Ce(NO₃)₆通过额外的前驱体氧化工艺对LiNi₀.₈Co₀.₁Al₀.₁O₂(LNCA)进行改性。Ce(NO₃)₆容易获得电子并发生还原反应,而Ni(OH)₂容易失去电子并发生氧化反应。(NH₄)₂Ce(NO₃)₆的参与可以促进Ni氧化为Ni³⁺,从而减少Li/Ni混排,提高LNCA样品的结构稳定性。Ce阳离子掺杂可以在长期循环过程中抑制LNCA正极材料的Li/Ni混排。Li[Ni₀.₈Co₀.₁Al₀.₁]₀.₉₇Ce₀.₀₃O₂(LNCA-Ce0.03)样品的倍率性能和长期循环稳定性均得到显著提高。此外,基于该正极的实用软包电池具有足够的重量能量密度(≈300 Wh kg⁻¹)和循环稳定性(在1 C下500次循环后容量保持率为81.3%)。