Rational design of layered oxide materials for sodium-ion batteries
Рациональный дизайн слоистых оксидных материалов для натрий-ионных аккумуляторов
2020-11-06
SCID: 54.1/ksgwvx2u
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cationic potentiallayered oxidesrational materials designsodium-ion batteriesstacking structures
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Abstract (AI)
Sodium-ion batteries have captured widespread attention for grid-scale energy storage owing to the natural abundance of sodium. The performance of such batteries is limited by available electrode materials, especially for sodium-ion layered oxides, motivating the exploration of high compositional diversity. How the composition determines the structural chemistry is decisive for the electrochemical performance but very challenging to predict, especially for complex compositions. We introduce the "cationic potential" that captures the key interactions of layered materials and makes it possible to predict the stacking structures. This is demonstrated through the rational design and preparation of layered electrode materials with improved performance. As the stacking structure determines the functional properties, this methodology offers a solution toward the design of alkali metal layered oxides.
Key Findings
1
Because stacking structure determines functional properties, cationic-potential-based design offers a general strategy for developing alkali-metal layered oxides.
2
Predicted stacking structures guide the development of layered materials with improved electrochemical performance.
3
The methodology enables rational design and synthesis of sodium-ion layered electrode materials across chemically diverse compositions.
4
The study introduces “cationic potential” to capture key interactions in layered oxides and predict their stacking structures.
Research Object
sodium-ion layered oxide electrode materials for sodium-ion batteries
Research Subject
the relationship between composition, stacking structure, and electrochemical performance, including prediction and rational design of layered oxides
Publication Details
Publication Date
2020-11-06
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