无机盐工业 ›› 2026, Vol. 58 ›› Issue (2): 1-9.doi: 10.19964/j.issn.1006-4990.2025-0171
• 综述与专论 • 下一篇
徐源1(
), 唐浩1, 张一博1, 赵亮1, 王淼1, 谈燕1, 王甲泰1,2,3, 康宇龙1,2,3(
)
收稿日期:2025-04-15
出版日期:2026-02-10
发布日期:2025-08-22
通讯作者:
康宇龙(1985— ),男,博士,副教授,研究方向为新型储能材料及中低温区热电功能材料;E-mail:kungyulong@163.com。作者简介:徐源(2000— ),女,硕士,研究方向为新型储能材料;E-mail:xy313028@163.com。
基金资助:
XU Yuan1(
), TANG Hao1, ZHANG Yibo1, ZHAO Liang1, WANG Miao1, TAN Yan1, WANG Jiatai1,2,3, KANG Yulong1,2,3(
)
Received:2025-04-15
Published:2026-02-10
Online:2025-08-22
摘要:
O3型镍铁锰酸钠正极材料具有理论容量高、低温性能较好、安全性能可靠等优势,在大规模储能系统领域应用广泛。对O3型镍铁锰酸钠正极材料进行改性,已成为当前提升钠离子电池循环性能和快速充放电能力的关键技术手段。鉴于此,对近年来O3型镍铁锰酸钠正极材料改性策略进行总结,深入分析元素掺杂、表面包覆、高熵设计、混相设计等策略对正极材料的影响,探讨优化正极材料改性策略的方法路径。经分析发现,这些改性策略能有效解决不可逆相变和钠离子扩散速率低等问题,进而提升钠离子电池循环寿命和快速充放电性能。同时,指出当前改性策略存在材料成本较高、制备工艺复杂等局限性,并对高性能钠离子电池正极材料的开发进行展望。
中图分类号:
徐源, 唐浩, 张一博, 赵亮, 王淼, 谈燕, 王甲泰, 康宇龙. O3型镍铁锰酸钠正极材料改性研究进展[J]. 无机盐工业, 2026, 58(2): 1-9.
XU Yuan, TANG Hao, ZHANG Yibo, ZHAO Liang, WANG Miao, TAN Yan, WANG Jiatai, KANG Yulong. Research advances in modification of O3-type sodium nickel-iron-manganese oxide cathode materials[J]. Inorganic Chemicals Industry, 2026, 58(2): 1-9.
表1
不同元素掺杂及电化学性能
| 原始材料 | 掺杂元素 及作用 | 首次放电 比容量/ (mA·h·g-1) | 容量 保持率 |
|---|---|---|---|
| NaNi1/3Mn1/3Fe1/3O2[ | Zr(扩大 层间距) | 1C,125.6 | 1C循环300次,77.7% |
| NaNi1/3Mn1/3Fe1/3O2[ | Zn(稳定 晶体结构) | 1C,116.3 | 1C循环100次,69.9% |
| NaNi1/3Mn1/3Fe1/3O2[ | Ta(增强结 构稳定性) | 0.1C,145 | 1C循环200次,80.15% |
| NaNi1/3Mn1/3Fe1/3O2[ | Sc(扩大 层间距) | 0.1C,156.1 | 5C循环500次,80.2% |
| NaNi1/3Mn1/3Fe1/3O2[ | Ca(扩大 层间距) | 1C,104.40 | 1C循环200次,87.65% |
| NaFe0.4Ni0.3Mn0.3O2[ | Y(提高循 环稳定性) | 1C,118.7 | 1C循环100次,91% |
| NaNi1/3Mn1/3Fe1/3O2[ | La、Al(La增大 层间距;Al减少Jahn-Teller效应) | 0.1C,170.42 | 0.2C循环300次,60.81% |
| Na0.85Ni0.2Fe0.4Mn0.4O2[ | Mg、B(提高 结构稳定性) | 10C,98.45 | 1C循环200次,82.6% |
| NaNi1/3Mn1/3Fe1/3O2[ | Al、Cu(Al提高结构稳定性;Cu提高放电比容量) | 5C,113 | 1C循环200次,81% |
表2
不同包覆材料及电化学性能
| 原始材料 | 包覆物质 及作用 | 首次放电比容 量/(mA·h·g-1) | 容量 保持率 |
|---|---|---|---|
| NaNi1/3Fe1/3Mn1/3O2[ | NiO(提高循 环稳定性) | 0.1C,139.4 | 1C循环80次,94.1% |
| NaMn1/3Fe1/3Ni1/3O2[ | ZrO2(增强循环稳定性) | 0.1C,约150 | 1C循环100次,81.9% |
| NaMn0.33Fe0.33Ni0.33O2[ | TiO2(增强循环稳定性) | 0.1C,160.9 | 1C循环100次,71.0% |
| NaNi1/3Fe1/3Mn1/3O2[ | H3PO4(增强 结构稳定性) | 0.1C,162 | 0.5C循环200次,约61% |
| NaNi1/3Fe1/3Mn1/3O2[ | NaPO3(增强 结构稳定性) | 0.1C,175 | 1C循环150次,80.1% |
| NaNi0.3Fe0.2Mn0.5O2[ | NaTi2(PO4)3(提高循环稳定性、结构稳定性) | 10C,107 | 1C循环300次,86% |
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