Sodium‐Ion Batteries

Натрий-ионные аккумуляторы
Donghan Kim, Michael Slater, Eungje Lee, Christopher S. Johnson
2012-05-21

anode materialscathode materialsgrid storagesodium-ion batteriessolid electrolyte interphase
Abstract The status of ambient temperature sodium ion batteries is reviewed in light of recent developments in anode, electrolyte and cathode materials. These devices, although early in their stage of development, are promising for large‐scale grid storage applications due to the abundance and very low cost of sodium‐containing precursors used to make the components. The engineering knowledge developed recently for highly successful Li ion batteries can be leveraged to ensure rapid progress in this area, although different electrode materials and electrolytes will be required for dual intercalation systems based on sodium. In particular, new anode materials need to be identified, since the graphite anode, commonly used in lithium systems, does not intercalate sodium to any appreciable extent. A wider array of choices is available for cathodes, including high performance layered transition metal oxides and polyanionic compounds. Recent developments in electrodes are encouraging, but a great deal of research is necessary, particularly in new electrolytes, and the understanding of the SEI films. The engineering modeling calculations of Na‐ion battery energy density indicate that 210 Wh kg −1 in gravimetric energy is possible for Na‐ion batteries compared to existing Li‐ion technology if a cathode capacity of 200 mAh g −1 and a 500 mAh g −1 anode can be discovered with an average cell potential of 3.3 V.
1
Ambient-temperature sodium-ion batteries are promising for large-scale grid storage because sodium precursors are abundant and inexpensive.
2
Graphite does not appreciably intercalate sodium, making the discovery of new anode materials a critical research priority.
3
Layered transition-metal oxides and polyanionic compounds provide a broad set of promising cathode choices, including high-performance materials.
4
Lithium-ion engineering knowledge can accelerate sodium-ion battery development, but sodium systems require different electrode materials and electrolytes.
5
Modeling indicates that sodium-ion batteries could reach 210 Wh kg−1 if they achieve a 200 mAh g−1 cathode, 500 mAh g−1 anode, and 3.3 V average cell potential; substantial electrolyte and SEI research remains necessary.

ambient-temperature sodium-ion batteries

the development status, electrode and electrolyte materials, SEI-film understanding, and achievable energy density of sodium-ion batteries

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Publication Date
2012-05-21
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Authors
Donghan Kim
Michael Slater
Eungje Lee
Christopher S. Johnson
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