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Updated: May 20, 2025

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
Published on: November 11, 2013
High-Entropy Doped P'2 Mn-Based Layered Oxide with Superior Stability and High Capacity for Sodium-Ion Batteries
Xiaoyu Gui1, Zhipeng Xiang1, Tianlu Ren1
1Guangdong Provincial Key Laboratory of Fuel Cell Technology, School of Chemistry and Chemical Engineering, South China University of Technology, Guangzhou, 510641, China.
Abstract:
P'2-NaxMnO2 (NMO) features an ultra-high specific capacity in sodium-ion batteries, which, however, suffers from a fast capacity decay. To improve the stability, a high-entropy doped P'2-Na0.59Mn0.90Ti0.02Cu0.02Ni0.02Co0.02Fe0.02O1.95F0.05 (NMHE0.1OF) is developed to lessen the Jahn-Teller distortion and address the multiple phase transition issue. Physicochemical characterizations reveal that the NMHE0.1OF yields a lower anisotropy in the Mn─O bond than does the undoped NMO. Theoretical calculations indicate that the cation doping enhances the coordination ability of oxygen and the F doping breaks the electronic symmetry of Mn. The in situ X-ray diffraction result reveals that the NMO experiences a more abrupt and irreversible OP4-P'2-P″2 tri-phase transition; and the NMHE0.1OF features a mild and reversible OP4-P'2 bi-phase transition, which originates from the alleviation in the contraction/expansion of the transition metal slabs evidenced by ex situ extended X-ray absorption fine structure. The bi-phase transition favors the compatibility between the NMHE0.1OF and the ether-based electrolyte at high voltages. As a result, the NMHE0.1OF yields a superior cyclability (97.8% capacity retention after 100 cycles at 100 mA g-1) with a notable specific capacity of 224 mAh g-1 at 10 mA g-1. This work provides an effective strategy for the rational design of cathode materials with high capacity and superior stability.
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