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Ti4+掺杂耦合硝酸锆溶液淬火协同改性富锂层状正极材料

李杰 曾桦 刘波 李道玉 倪伟 袁欣然 辛亚男

李杰, 曾桦, 刘波, 李道玉, 倪伟, 袁欣然, 辛亚男. Ti4+掺杂耦合硝酸锆溶液淬火协同改性富锂层状正极材料[J]. 钢铁钒钛, 2026, 47(3): 63-72. doi: 10.7513/j.issn.1004-7638.2026.03.007
引用本文: 李杰, 曾桦, 刘波, 李道玉, 倪伟, 袁欣然, 辛亚男. Ti4+掺杂耦合硝酸锆溶液淬火协同改性富锂层状正极材料[J]. 钢铁钒钛, 2026, 47(3): 63-72. doi: 10.7513/j.issn.1004-7638.2026.03.007
LI Jie, ZENG Hua, LIU Bo, LI Daoyu, NI Wei, YUAN Xinran, XIN Yanan. Ti4+ doping coupled with zirconium nitrate solution quenching for synergistic modification of lithium-rich layered oxide cathodes[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(3): 63-72. doi: 10.7513/j.issn.1004-7638.2026.03.007
Citation: LI Jie, ZENG Hua, LIU Bo, LI Daoyu, NI Wei, YUAN Xinran, XIN Yanan. Ti4+ doping coupled with zirconium nitrate solution quenching for synergistic modification of lithium-rich layered oxide cathodes[J]. IRON STEEL VANADIUM TITANIUM, 2026, 47(3): 63-72. doi: 10.7513/j.issn.1004-7638.2026.03.007

Ti4+掺杂耦合硝酸锆溶液淬火协同改性富锂层状正极材料

doi: 10.7513/j.issn.1004-7638.2026.03.007
基金项目: 四川省科技计划项目(2024ZYD0198)。
详细信息
    作者简介:

    李杰,1998年出生,男,四川巴中人,博士,工程师,主要研究方向为二次电池电极材料及钒基功能材料,E-mail:lijie15182758957@163.com

    通讯作者:

    辛亚男,1989年出生,男,山东聊城人,博士,正高级工程师,从事钒钛基功能材料开发研究,E-mail:917031125@163.com

  • 中图分类号: TF823,TG146

Ti4+ doping coupled with zirconium nitrate solution quenching for synergistic modification of lithium-rich layered oxide cathodes

  • 摘要: 富锂层状氧化物(LLOs)是最具潜力的下一代锂电正极材料,但其体相-表面双重劣化引发的性能衰退问题严重制约商业化应用。研究提出体相Ti4+掺杂耦合硝酸锆溶液淬火的协同改性策略,构建“体相强化-表面防护”双重稳定体系。体相Ti4+取代Mn位点,以强Ti-O键抑制晶格氧释放、过渡金属(TM)迁移与不可逆相变;溶液淬火通过快速离子交换与原位结构重构,在颗粒表面构建具有“Zr4+掺杂和无序岩盐结构壳层”的Zr基多功能改性层,兼具界面阻隔、稳定晶格氧与拓宽锂离子通道的作用。结果表明:TZ-LNMO的结构稳定性与电化学性能大幅提升。具体而言,它在0.1C下可逆比容量达271.8 mAh/g,首次库伦效率(ICE)高达85.21%;1C下300次循环后容量保持率高达90.8%,平均放电电压每圈衰减速率仅为0.56 mV。
  • 图  1  LNMO、T-LNMO和TZ-LNMO样品的SEM图像及TZ-LNMO的SEM-EDS面扫图像

    SEM图像: (a)(d) LNMO,(b)(e) T-LNMO, (c)(f) TZ-LNMO;(g) TZ-LNMO的SEM-EDS 面扫图像

    Figure  1.  SEM images of LNMO, T-LNMO, and TZ-LNMO samples, and the SEM-EDS mapping images of TZ-LNMO

    图  2  LNMO、T-LNMO和TZ-LNMO样品的XRD图谱

    (a) XRD图谱总谱;(b) 部分衍射峰的放大图

    Figure  2.  XRD patterns of LNMO, T-LNMO, and TZ-LNMO samples

    图  3  T-LNMO和TZ-LNMO样品的HAADF-STEM图像及FFT图像

    (a) T-LNMO的TEM图像; (b) 表面和(c) 体相区域的HAADF-STEM图像及FFT图像; (d) TZ-LNMO的TEM图像; (e) 表面和(f) 体相区域的HAADF-STEM图像及FFT图像

    Figure  3.  HAADF-STEM images with FFT patterns of T-LNMO and TZ-LNMO samples

    图  4  各正极材料的首次充放电曲线、dQ/dV曲线和倍率性能

    (a)(b) 0.1C下的首次充放电曲线及其dQ/dV曲线; (c) LNMO和TZ-LNMO对的倍率性能; (d) ΔV随倍率变化曲线; (e) LNMO和(f) TZ-LNMO在不同倍率下的充放电曲线

    Figure  4.  Initial charge/discharge curves, dQ/dV curves and rate performance of various as-prepared cathode materials

    图  5  各正极材料的循环性能

    在1C下循环的:(a) 容量衰减曲线, (b) 平均放电电压衰减曲线, (c) 能量密度和能量效率变化曲线; LNMO和TZ-LNMO不同循环次数的:(d)( f) 充放电曲线, (e)(g) dQ/dV曲线; (h) LNMO和TZ-LNMO在0.1C下的循环性能

    Figure  5.  Cycling performance of various cathode materials

    图  6  各正极材料在1C下200次循环后的SEM图像和HRTEM图像

    SEM图像: (a) LNMO, (b) T-LNMO, (c) TZ-LNMO; HRTEM图像: (d)LNMO, (e) TZ-LNMO

    Figure  6.  SEM and HRTEM images of various cathode materials after 200 cycles at 1C

    图  7  各正极材料在1C下200次循环后的XRD图谱和隔膜上沉积的过渡金属含量

    (a) LNMO和(b) TZ-LNMO在循环前后的XRD图谱; (c) (003)(101)和(104)衍射峰的放大图; (d) LNMO、T-LNMO和TZ-LNMO电池隔膜上沉积的过渡金属含量

    Figure  7.  XRD patterns and transition metal (TM) content deposited on the separator of various cathode materials after 200 cycles at 1C

    表  1  所有正极材料的ICP-OES分析结果

    Table  1.   ICP-OES analysis results of all cathode materials

    Sample n(Li)∶n(Ni)∶n(Mn)∶n(Ti)∶n(Zr)
    LNMO 1.197∶0.201∶0.602∶0.000∶0.000
    T-LNMO 1.196∶0.202∶0.574∶0.018∶0.000
    Z-LNMO 1.184∶0.207∶0.609∶0.000∶0.007
    TZ-LNMO 1.186∶0.203∶0.576∶0.020∶0.006
    下载: 导出CSV

    表  2  LNMO、T-LNMO和TZ-LNMO的晶格参数

    Table  2.   Refined structural data for LNMO, T-LNMO, and TZ-LNMO samples

    Sample Space group Lattice parameter
    a/nm b/nm c/nm V/nm3
    LNMO $ \mathrm{R}\overline{3}\mathrm{m} $ 0.28595 0.28595 1.42544 0.100943
    T-LNMO $ \mathrm{R}\overline{3}\mathrm{m} $ 0.28596 0.28596 1.42584 0.100971
    TZ-LNMO $ \mathrm{R}\overline{3}\mathrm{m} $ 0.28609 0.28609 1.42720 0.101162
    下载: 导出CSV

    表  3  所有正极材料在1C倍率下的循环性能

    Table  3.   Cycling performance of all cathode materials at 1C

    Sample Capacity/
    (mAh·g−1)
    Capacity
    retention/%
    Voltage
    decay rate/
    (mV·cycle−1)
    Energy density
    after 300 cycles/
    (Wh·kg−1)
    1st 300th
    LNMO 193.3 103.6 53.6 1.38 320.6
    T-LNMO 205.8 150.8 73.3 1.19 488.4
    Z-LNMO 203.9 166.5 81.6 0.87 556.0
    TZ-LNMO 200.9 187.0 90.8 0.56 637.9
    下载: 导出CSV
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  • 收稿日期:  2026-01-13
  • 录用日期:  2026-02-09
  • 修回日期:  2026-01-27
  • 刊出日期:  2026-06-29

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