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Updated: Jun 10, 2025

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
Published on: November 11, 2013
Probing Phase Formation and Structural Transformations in Sodium Extraction and Insertion of NaFe1-MnPO4 through
Maha Ismail1,2, Oier Lakuntza1,3, Javier Carrasco1,3
1Basque Research and Technology Alliance (BRTA), Centre for Cooperative Research on Alternative Energies (CIC energiGUNE), Alava Technology Park, Albert Einstein 48, 01510 Vitoria-Gasteiz, Spain.
Abstract:
Manganese (Mn) substitution is a widely explored strategy aimed at sustainably enhancing the energy density of iron (Fe)-based electrode materials by taking advantage of the higher redox potential of the former. However, excessive Mn content can lead to detrimental effects, offsetting the expected improvements. In experimental studies, triphylite NaFe0.8Mn0.2PO4 has been identified as an optimal composition with enhanced electrochemical performance compared to that of its parent phase NaFePO4. Higher Mn contents result in a loss of capacity and increased voltage hysteresis. In this study, density functional theory (DFT) calculations were employed to investigate the phase stability upon desodiation of Mn-poor and -rich NaFe1-MnPO4 compositions. Our findings reveal distinct stability behaviors in antagonistic systems NaFe0.75Mn0.25PO4 and NaFe0.25Mn0.75PO4, where the presence of Na-vacancies and charge orderings appear to influence phase stability. In addition, the number of intermediate phases throughout the desodiation process is identified as a crucial factor in buffering the volume changes. This work sheds light on the superior electrochemical performance of lightly Mn-substituted phases and unveils a key parameter for designing future electrode materials with improved performance.
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