无机材料学报 ›› 2026, Vol. 41 ›› Issue (8): 1069-1077.DOI: 10.15541/jim20250320 CSTR: 32189.14.10.15541/jim20250320
收稿日期:2025-08-01
修回日期:2025-09-29
出版日期:2026-08-20
网络出版日期:2025-10-31
通讯作者:
望红玉, 教授. E-mail: HYuWang26@163.com作者简介:刘博宇(2001-), 男, 硕士研究生. E-mail: lby1755825225@163.com
基金资助:
LIU Boyu(
), WANG Tengfei, PANG Qing, LI Xiufen, WANG Hongyu(
)
Received:2025-08-01
Revised:2025-09-29
Published:2026-08-20
Online:2025-10-31
Contact:
WANG Hongyu, professor. E-mail: HYuWang26@163.comAbout author:LIU Boyu (2001-), male, Master candidate. E-mail: lby1755825225@163.com
Supported by:摘要:
LiNi0.8Co0.1Mn0.1O2 (NCM811)因其高理论比容量, 已成为动力电池领域中重要的正极材料之一。然而, 当充电电压超过4.3 V时, 材料易发生结构相变并与电解液产生剧烈界面副反应, 导致界面阻抗增大和容量快速衰减, 制约其能量密度进一步提升。本研究提出一种协同改性策略, 在采用同步锂化工艺的同时, 制备Mg-Cr共掺杂的LiNi0.5Mn1.5O4 (LNMO)包覆层。该包覆层继承了LNMO的高工作电压、三维锂离子传输通道以及良好的电化学稳定性, 同时Mg-Cr共掺杂提高了LNMO的离子/电子电导率并抑制了Mn元素的溶解。结果表明, Mg-Cr共掺杂LNMO包覆改性降低了NCM811正极材料中Li+/Ni2+阳离子混排程度, 改性后正极材料在2.7~4.5 V电压区间表现出优异性能, 在0.1C (1C=200 mA·g-1)下的首圈放电比容量达到212.74 mAh·g-1, 5C高倍率下的放电比容量达到182.32 mAh·g-1, 1C倍率下循环100圈后容量保持率为77.09%, 性能显著优于未改性及分步包覆样品。该策略通过抑制界面副反应、降低电荷转移电阻, 提升了NCM811的稳定性与电化学性能, 为高电压高镍正极材料优化提供了有效途径。
中图分类号:
刘博宇, 王腾飞, 庞青, 李秀芬, 望红玉. Mg-Cr共掺LiNi0.5Mn1.5O4包覆LiNi0.8Co0.1Mn0.1O2锂离子电池正极材料[J]. 无机材料学报, 2026, 41(8): 1069-1077.
LIU Boyu, WANG Tengfei, PANG Qing, LI Xiufen, WANG Hongyu. LiNi0.8Co0.1Mn0.1O2 Coated with Mg-Cr Co-doped LiNi0.5Mn1.5O4 as Cathode Material for Li-ion Battery[J]. Journal of Inorganic Materials, 2026, 41(8): 1069-1077.
图3 (a, b) NCM811、(c, d) NCM811-LNMO和(e, f) NCM811- LNMO-Mg-Cr的SEM照片; (g) NCM811-LNMO-Mg-Cr的EDS元素分布图
Fig. 3 (a-f) SEM images of (a, b) NCM811, (c, d) NCM811- LNMO and (e, f) NCM811-LNMO-Mg-Cr; (g) EDS elemental mappings of NCM811-LNMO-Mg-Cr
图4 (a, b) NCM811-LNMO和(c, d) NCM811-LNMO-Mg-Cr的(a, c) TEM和(b, d) HRTEM照片
Fig. 4 (a, c) TEM and (b, d) HRTEM images of (a, b) NCM811-LNMO and (c, d) NCM811-LNMO-Mg-Cr
图5 (a) NCM811、(b) NCM811-LNMO和(c) NCM811-LNMO-Mg-Cr的(a~c) Ni2p XPS谱图和(d) Ni2+/Ni3+占比; (e, f) NCM811-LNMO-Mg-Cr的(e) Cr2p和(f) Mg1s XPS谱图
Fig. 5 (a-c) Ni2p XPS spectra and (d) Ni2+/Ni3+ ratios of (a) NCM811, (b) NCM811-LNMO and (c) NCM811-LNMO-Mg-Cr; (e) Cr2p and (f) Mg1s XPS spectra of NCM811-LNMO-Mg-Cr Colorful figures are available on website
图6 NCM811、NCM811-LNMO和NCM811-LNMO-Mg-Cr电池的电化学性能
Fig. 6 Electrochemical performances of NCM811, NCM811-LNMO and NCM811-LNMO-Mg-Cr cells (a) Charge-discharge curves; (b) Rate capability; (c) Lithium ion diffusion coefficient; (d) Cycling performance Colorful figures are available on website
图7 (a, b) 100圈循环(a)前、(b)后NCM811、NCM811-LNMO和NCM811-LNMO-Mg-Cr电池的EIS谱图; (c) NCM811和(d) NCM811-LNMO-Mg-Cr电池的dQ/dV曲线
Fig. 7 (a, b) EIS spectra of NCM811, NCM811-LNMO and NCM811-LNMO-Mg-Cr cells (a) before and (b) after 100 cycling; (c, d) dQ/dV curves of (c) NCM811 and (d) NCM811-LNMO-Mg-Cr cells Colorful figures are available on website
图9 100圈循环后(a, b) NCM811、(c, d) NCM811-LNMO和(e, f) NCM811-LNMO-Mg-Cr的SEM照片
Fig. 9 SEM images of (a, b) NCM811, (c, d) NCM811- LNMO and (e, f) NCM811-LNMO-Mg-Cr after 100 cycling
图S2 (a, b) NCM811-LNMO-1和(c, d) NCM811-LNMO-Mg-Cr-1的SEM照片; (e) NCM811-LNMO-Mg-Cr-1的EDS元素分布图
Fig. S2 (a-d) SEM images of (a, b) NCM811-LNMO-1 and (c, d) NCM811-LNMO-Mg-Cr-1; (e) EDS elemental mappings of NCM811-LNMO-Mg-Cr-1
图S3 NCM811-LNMO-1和NCM811-LNMO-Mg-Cr-1电池的电化学性能
Fig. S3 Electrochemical performances of NCM811-LNMO-1 and NCM811-LNMO-Mg-Cr-1 cells (a) Charge-discharge curves; (b) Rate capability; (c) Lithium ion diffusion coefficients; (d) Cycling performances
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