物理化学学报 >> 2026, Vol. 42 >> Issue (5): 100206.doi: 10.1016/j.actphy.2025.100206
所属专题: 二次电池先进正极材料
收稿日期:2025-08-11
修回日期:2025-09-21
录用日期:2025-10-21
发布日期:2026-01-23
通讯作者:
Email: xfu@ujs.edu.cn (傅小奇)yaosshan@hotmail.com (姚山山)
Shuang Wang1, Xiaoqi Fu2,*(
), Shanshan Yao1,*(
)
Received:2025-08-11
Revised:2025-09-21
Accepted:2025-10-21
Published:2026-01-23
Contact:
Email: xfu@ujs.edu.cn (Xiaoqi Fu)yaosshan@hotmail.com (Shanshan Yao)
摘要:
钠离子电池(SIBs)凭借钠资源丰富、成本低廉及环境友好等优势,在大规模储能系统中展现出巨大应用潜力。正极材料的离子迁移与电子转移速率是决定电池倍率性能、循环寿命及容量保持率的关键因素,二者的协同提升对突破性能瓶颈至关重要。本文以钠离子电池三大主流正极材料——层状过渡金属氧化物(LTMOs)、聚阴离子化合物(PACs)和普鲁士蓝类似物(PBAs)为研究对象,系统梳理了不同材料体系中离子迁移通道与电子转移路径的结构基础,深入解析了二者的协同调控机制。结合最新研究成果,从元素优化、结构设计与复合改性三个维度,阐释了协同提升离子通道通畅性与电子通路连续性的具体路径与作用机理,提炼出高性能SIBs正极材料的普适性设计策略,为进一步开发兼具高容量、高倍率性能与稳定的SIBs正极材料提供了有益参考。
王双, 傅小奇, 姚山山. 钠离子电池正极材料中离子迁移与电子转移的协同优化[J]. 物理化学学报, 2026, 42(5), 100206. doi: 10.1016/j.actphy.2025.100206
Shuang Wang, Xiaoqi Fu, Shanshan Yao. Synergistic optimization of ion migration and electron transfer in sodium-ion battery cathode materials[J]. Acta Phys. -Chim. Sin. 2026, 42(5), 100206. doi: 10.1016/j.actphy.2025.100206
表2
"
| Cathode | Anode | Cycle performance (cycle/rentention) | Voltage (V) | Capacity (mAh g−1) | Na+ diffusion Coefficient | Conductivity | Elyctrolyte | Ref. | |||
| Na3.08Fe2.44(P2O6.98)2F0.04 | half-cell: Na | 50C, 20000, 86.3%; 1C, 300, 94.3% | 1.8–4.2 | 54.4–116.4C | 10−10–10−9 cm2 s−1 | Band gap dropped from 4.43 eV to 3.19 eV | 1 mol L−1 NaPF6 in PC + 2 vol% FEC | 72 | |||
| full-cell: HC | – | – | 88.3C | ||||||||
| P2-Na2/3Ni1/3Mn2/3O2 | half-cell: Na | – | 2.0–4.3 | 69.1– 89.9C | 10−10 cm2 s−1 | – | 1 mol L−1 NaPF6 in PC + 2 vol% FEC | 84 | |||
| P2/O3-Na0.80Li0.13Ni0.20Fe0.10Mn0.57O2 | half-cell: Na | 1C, 100, 88.60% | 2.0–4.5 | 152.4–172.02C | 10−12 cm2 s−1 | enhanced | 1 mol L−1 NaClO4 in EC : PC = 1 : 2 + 5 vol% FEC | 85 | |||
| layered-tunnel intergrowth Na0.6MnO2 (LT-NaMO) | half-cell: Na | 5C, 300, 70.5% | 2.0–4.0 | 98.7–179.4C | Fast Kinetics | enhanced | 1 mol L−1 NaClO4 in PC + 5 vol% FEC | 86 | |||
| full-cell: HC | 1C, 100, 85.0% | 1.9–3.9 | 162.3C | ||||||||
| P2-Na0.7Mg0.05 [Mn0.6Ni0.2Mg0.15]O2 | half-cell: Na | 1C, 1000, 79% | 1.5–4.2 | 130C | enhanced | enhanced | 1 mol L−1 NaClO4 in EC : PC (1 : 1) | 45 | |||
| full-cell: HC | 0.2C, 50, 85% | 2.0–4.0 | 63C | ||||||||
| P'2-Na0.653Ni0.081Mn0.799Ti0.120O2 | full-cell: HC | 250 mA g−1, 500, 87.2% | 1.8–4.3 | 185C | 10−11–10−10 cm2 s−1 | enhanced | – | 41 | |||
| NaNi0.3Cu0.1Fe0.2Mn0.3Ti0.1O2 (NCFMT) | half-cell: Na | 1C, 500, 85%; 45 ℃, 1C, 500, 80% | 2.0–4.0 | 141.5C | twice that of NCFMS | Better than NCFMS | 1 mol L−1 NaClO4 in PC/EC/DMC (1 : 1 : 1) + 2 vol% FEC | 42 | |||
| full-cell: HC | 1C, 682, 80%; 4.15 V, 1C–2C, 67.2% | 0.5–4.0; 0.5–4.15 | – | ||||||||
| [Na0.89Li0.05Cu0.11Ni0.11Fe0.3 Mn0.43O1.97F0.03] (LCNFM) | half-cell: Na full-cell: HC | 1C, 300, 80% 1C, 200, 81.6% | 1.5–4.0 1.0–4.0 | 138.6C 134.5C | 10−10–10−9 cm2 s−1 | Better than CNFM | – | 31 | |||
| NaNi0.2Fe0.2Mn0.35Cu0.05Zn0.1Sn0.1O2 | full-cell: HC | 3.0C, 500, 87%; 1.0C, 300, 80% | 0.5–4.0 | 64–122C | 10−11–10−10 cm2 s−1 | Narrow band gap 0.14 eV | 1 mol L−1 NaClO4 in EC/PC/DMC (4.5 : 4.5 : 0.1) + 3 wt% FEC | 78 | |||
| Na0.78Ni0.31Mn0.67Nb0.02O2 (P2-NaMNNb) | half-cell: Na | −40 ℃, 368 mA g−1, 1800, 76%; 25 ℃, 9.2 A g−1, 65% | 2.4–4.15 | 66–97C | 10−9–10−6 cm2 s−1 | Band gap dropped from 0.500 eV to 0.332 eV | 1 mol L−1 NaPF6 in diglyme | 44 | |||
| full-cell: HC | 25 ℃, 920 mA g−1, 300, 84%; −40 ℃, 92 mA g−1, 100, 89% | 2.3–4.14 | 20–60C | ||||||||
| Na3.5V1.5Fe0.5(PO4)3–V2O3 (NVFP–VO) | half-cell: Na | 100C, 100, 000, 72.6% | 2.0–4.1 | 82–130C | 10−8 cm2 s−1 | Band gap about 1.18 eV | 1 mol L−1 NaClO4 in PC + 5 vol% FEC | 61 | |||
| full-cell: HC | 1C, 500, 77.38% | 1.7–4.1 | – | ||||||||
| Na3V1.8Mn0.2(PO4)3/C (NVMP/C) | half-cell: Na | 1C, 100, 90% | 2.0–4.0 | 107C | 10−11 cm2 s−1 | enhanced | 1 mol L−1 NaClO4 in EC : PC (1 : 1) | 80 | |||
| Na3V2(PO4)3 (NVP-E700) | half-cell: Na | 0.2C, 200, 99.6%; 10 C, 82.8% | 2.0–4.5 | 83–180C | 10−11 cm2 s−1 | enhanced | – | 47 | |||
| Na2.5Fe2(SO4)2.5(PO4)0.5 (NFSP-0.5) | half-cell: Na | 10C, 10000, 88.8% | 2.0–4.5 | 80–112C | 10−11 cm2 s−1 | Band gap dropped from 3.63 eV to 3.35 eV | – | 50 | |||
| full-cell: HC | 1C, 1000, 85.9% | – | – | ||||||||
| Na3V1.44Fe0.5Mo0.06(PO4)3 (NVFP-Mo (0.06)) | half-cell: Na | 30C, 2500, 92%; 0.2C, 50, 97.7% | 2.2–4.2 | 123.4c | 10−10–10−8 cm2 s−1 | enhanced | 1 mol L−1 NaClO4 in PC + 5 vol% FEC | 51 | |||
| Na3Cr0.5V1.5(PO4)3/rGO (VC/C-G) | half-cell: Na | 0.2C, 100, 80.4% | 1.5–4.5 | 95–176C | 10−11–10−8 cm2 s−1 | enhanced | – | 57 | |||
| Na3.4Fe2.4(PO4)1.4P2O7/C (1.4-NFPP/C) | half-cell: Na | 10C, 1000, 97.7%; 1C, 300, 100% | 1.7–4.1 | 112.2c | 10−11 cm2 s−1 | enhanced | 1 mol L−1 NaClO4 in EC : PC (1 : 1) + 5 vol% FEC | 60 | |||
| full-cell: HC | 1C, 1000, 87.7% | 1.7–4.1 | 106.3c | ||||||||
| Na3Fe2(PO4)P2O7/rGO (NFPP/rGO) | half-cell: Na | 20C, 8000, 72.4%; 10C, 2000, 88.0% | 1.5–4.0 | 42–106C | 10−10 cm2 s−1 | enhanced | 1 mol L−1 NaClO4 in EC/DEC (1 : 1) | 64 | |||
| full-cell: HC | 100 mA g−1, 500, 85.2% | – | 86.2C | ||||||||
| Na4VMn0.75Mg0.25(PO4)3 (Mg-NVMP) | half-cell: Na | 78 mAh g−1, 100, 96% | 3.8–2.75 | 80C | 10−4 cm2 s−1 | enhanced | 1 mol L−1 NaClO4 in EC/PC/DMC (4.5 : 4.5 : 0.1) + 3 wt% FEC | 59 | |||
| Na3.75VMn0.75Al0.25(PO4)3 (Al-NVMP) | half-cell: Na | 92 mAh g−1, 100, 96% | 3.8–2.75 | 80–89C | 10−4 cm2 s−1 | enhanced | |||||
| Na4Fe3(PO4)2P2O7 (NFPP-Si₀.₀₅) | half-cell: Na | 50C, 5000, 84.2% | 1.5–4.0 | 61–119C | 10−11–10−9 cm2 s−1 | enhanced | 1 mol L−1 NaClO4 in EC/DEC (1 : 1) + 5% FEC | 87 | |||
| Na1.97Fe[Fe(CN)6]0.986 (Fe-HCF-5) | half-cell: Na | 1C, 100, 80.6% | 2.0–4.2 | 112–152C | enhanced | enhanced | – | 70 | |||
| full-cell: HC | 0.1C, 50, 83.24% | 2.0–3.6 | 89.0C | ||||||||
| Na1.68Fe0.92Cu0.08[Fe(CN)6]0.86· 1.43H2O (Cu-FeHCF) | half-cell: Na | 100 mA g−1, 100, 83.6%; 2 A g−1, 500, 76.5% | 2.0–4.2 | 82–127C | 10−10 cm2 s−1 | enhanced | – | 75 | |||
| K0.95Ag3.05Fe(CN)6@CNTs (AgHCF@CNTs) | half-cell: Na | 500 mA g−1, 500, 74% | 1.1–4.1 | 152c | 10−14–10−10 cm2 s−1 | enhanced | – | 69 | |||
| a core–shell structure of cobalt hexacyanoferrate (CoFeHCF) | half-cell: Na | 100 mA g−1, 300, 89% | 2.0–4.2 | 94–160C | enhanced | – | 1 mol L−1 NaClO4 in PC | 93 | |||
| high sodium content PBAs (HSPB) | half-cell: Na | 50 mA g−1, 200, 65.7% | 2.0–4.2 | 136.9C | – | – | 1 mol L−1 NaClO4 in EC : DEC (1 : 1) + 5 wt% FEC | 34 | |||
| full-cell: HC | 1C, 1000, 80% | 2.0–3.6 | – | ||||||||
| K0.24(VO)0.58[Fe(CN)6]·2.59H2O (FeVO-PBA) | half-cell: Na | – | 1.6–4.0 | 56.1– 48.9C | 10−12–10−8 cm2 s−1 | Exhibit metallic properties | ether-based electrolyte | 89 | |||
| full-cell: HC | 1C, 100, 85.0% | 1.9–3.9 | 138.0–162.3C | ||||||||
| PB-PA3 | half-cell: Na | 1C, 200, 94%; 10C, 2500, 79%; 20C, 4000, 79% | 2.0–4.2 | 94.8–143.9C | 10−14–10−13 cm2 s−1 | – | – | 66 | |||
| full-cell: HC | 1C, 300, 85%; 5C, 1000, 84% | 2.0–3.8 | 108–133C | ||||||||
| Na1.7Ni0.04Fe0.48Mn0.48[Fe(CN)6]0.92 (NFM-PB-1) | half-cell: Na | 100 mA g−1, 1000, 85.19% | 2.0–4.2 | 102.7–131.0C | 10−11 cm2 s−1 | – | – | 65 | |||
| full-cell: HC | 100 mA g−1, 250, 79.35% | – | 88.9C | ||||||||
| Na0.28K1.55Fe[Fe(CN)6]·1.53H2O (NKPB-3) | half-cell: Na | 150 mA g−1, 300, 83.5% | 2.0–4.2 | 10−12–10−8 cm2 s−1 | – | 66 | |||||
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