Acta Phys. -Chim. Sin. ›› 2026, Vol. 42 ›› Issue (5): 100214.doi: 10.1016/j.actphy.2025.100214
• ARTICLE • Previous Articles Next Articles
Peicai Li1,2, Xubin Wang2,3, Qinghua Zhang2, Bowen Wang2,3, Xiaohui Rong2,3,4,*(
), Yong-Sheng Hu2,3,4,5,*(
), Zhongtao Li1,*(
)
Received:2025-08-19
Revised:2025-10-22
Accepted:2025-10-28
Published:2026-01-23
Contact:
Email: rong@iphy.ac.cn (Xiaohui Rong)yshu@iphy.ac.cn (Yong-Sheng Hu)liztao@upc.edu.cn (Zhongtao Li)
Peicai Li, Xubin Wang, Qinghua Zhang, Bowen Wang, Xiaohui Rong, Yong-Sheng Hu, Zhongtao Li. High-rate and long-cycling P2-type cathode material for sodium-ion batteries[J]. Acta Phys. -Chim. Sin. 2026, 42(5), 100214. doi: 10.1016/j.actphy.2025.100214
Fig 1
Morphological and structural characterizations of P2-NNMO and P2-NZNFMTO. XRD Rietveld refinement of (a) P2-NNMO and (b) P2-NZNFMO. (c) SEM images and particle size distributions of P2-NZNFMTO. (d) Aberration-corrected transmission electron microscopy (AC-STEM) image of P2-NZNFMTO. (e) STEM image and EDS mappings for elements."
Fig 3
Electrochemical properties of P2-NNMO and P2-NZNFMO in half cell configuration. (a) Galvanostatic charge/discharge curves at 0.1C. (b) CV curves of P2-NNMO. (c) CV curves of P2-NZNFMO. (d) Rate performances for P2-NNMO and P2-NZNFMO and (e, f) the corresponding charge/discharge curves. (g, h) Cycling performance at 1C and 3C."
Fig 4
Mechanism analysis of P2-NNMO and P2-NZNFMTO during charging and discharging processes. Contour plots of in situ XRD for (a) P2-NNMO and (b) P2-NZNFMTO during the initial charge and discharge process. GITT curves and corresponding Na+ diffusion coefficients of (c) P2-NNMO and (d) P2-NZNFMTO. (e) O 1s and (f) Mn 2p XPS at pristine, charged to 4.0, 4.3 V and discharged to 3.5, 2.5 V for P2-NNMO and P2-NZNFMTO, respectively."
Fig 5
Failure mechanism analysis of P2-NNMO and P2-NZNFMTO. The SEM images of cycled electrodes for (a) P2-NNMO and (b) P2-NZNFMTO. The XRD patterns of cycled electrodes for (c) P2-NNMO and (d) P2-NZNFMTO. Electrochemical impedance spectroscopy plots of (e) P2-NNMO, (f) P2-NZNFMTO at different cycle times. P2-NNMO and P2-NZNFMTO electrodes after 200 cycles tested by XPS of (g) F 1s, and (h) O 1s."
Fig 6
Na-ion full cell performance of P2-NZNFMTO and commercial hard carbon. (a) Schematic representation of the charging/discharging process for HC||P2-NZNFMTO. (b) Galvanostatic charge/discharge curves between P2-NZNFMTO and hard carbon electrodes in a half cell. (c) The charge−discharge curves of P2-NZNFMTO||HC cells for the first two weeks at 0.1C. (d) Rate capabilities of HC||P2-NZNFMTO cells from 0.2C to 3C. (e) Charge/discharge profiles within 1.0–4.3 V at different rates. (f) Cycling stability of HC||P2-NZNFMTO full cell device at 1C rate."
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