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Updated: Jan 6, 2026

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
Published on: November 11, 2013
Investigating Element Composition of High-Entropy Layered Oxides: Insights on Performance Influence for Sodium-Ion
Xiangnan Li1,2, Ziya Zhang1,2, Xinyu Tang1,2
1School of Chemistry and Chemical Engineering, Henan Normal University, Xinxiang Henan 453007, China.
Abstract:
The application potential of layered oxides for sodium-ion batteries is expanded by the entropy stabilization strategy. However, specific research on the selection of elements and interpretation of the function of high-entropy materials are limited. In this study, we have developed several types of high-entropy materials, NaNi0.25Fe0.15Mn0.3Ti0.1Sn0.05Co0.05Li0.1O2 (HEO-TS), NaNi0.25Fe0.15Mn0.3Ti0.05Sn0.1Co0.05Li0.1O2 (HEO-ST), NaNi0.25Fe0.15Mn0.3Ti0.15Co0.05Li0.1O2 (HEO-Ti), and NaNi0.25Fe0.15Mn0.3Sn0.15Co0.05Li0.1O2 (HEO-Sn). Through the analysis of the physical and electrochemical properties, the introduction of Ti into the transition metal layer enhances air stability and rate performance. It exhibits excellent electrochemical properties under a high voltage. Furthermore, the partial introduction of Sn4+ increases the voltage difference of redox potential and electrochemical polarization. When the transition metal layer contains a large amount of Sn, the material exhibits poor electrochemical properties and struggles to form high crystallinity cathode materials. This work provides a solution for the element design of high-entropy layered oxides and investigates the relationship between the elements and electrochemical properties.
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