Transition Metal Oxide Anodes for Electrochemical Energy Storage in Lithium‐ and Sodium‐Ion Batteries
Аноды на основе оксидов переходных металлов для электрохимического хранения энергии в литий- и натрий-ионных аккумуляторах
2019-11-18
SCID: 54.1/mx3hy6pt
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anode materialsconversion reactionslithium-ion batteriessodium-ion batteriestransition metal oxides
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Abstract (AI)
Abstract Lithium‐ion batteries (LIBs) with outstanding energy and power density have been extensively investigated in recent years, rendering them the most suitable energy storage technology for application in emerging markets such as electric vehicles and stationary storage. More recently, sodium, one of the most abundant elements on earth, exhibiting similar physicochemical properties as lithium, has been gaining increasing attention for the development of sodium‐ion batteries (SIBs) in order to address the concern about Li availability and cost—especially with regard to stationary applications for which size and volume of the battery are of less importance. Compared with traditional intercalation reactions, conversion reaction‐based transition metal oxides (TMOs) are prospective anode materials for rechargeable batteries thanks to their low cost and high gravimetric specific capacities. In this review, the recent progress and remaining challenges of conversion reactions for LIBs and SIBs are discussed, covering an overview about the different synthesis methods, morphological characteristics, as well as their electrochemical performance. Potential future research directions and a perspective toward the practical application of TMOs for electrochemical energy storage are also provided.
Key Findings
1
Conversion-reaction transition metal oxides are promising anode materials because they combine low cost with high gravimetric specific capacities compared with traditional intercalation materials.
2
Lithium-ion batteries remain highly suitable for emerging applications such as electric vehicles and stationary energy storage because of their high energy and power density.
3
Significant challenges remain before transition metal oxide anodes can be practically applied, motivating further research into their synthesis, structures, electrochemistry, and future development directions.
4
Sodium-ion batteries are gaining attention as a lower-resource and potentially lower-cost alternative, particularly for stationary storage where size and volume are less critical.
5
The review summarizes recent progress in transition metal oxide conversion reactions for both lithium-ion and sodium-ion batteries, including synthesis methods, morphology, and electrochemical performance.
Research Object
Conversion reaction-based transition metal oxide anodes in lithium-ion and sodium-ion batteries
Research Subject
Recent progress, synthesis methods, morphological characteristics, electrochemical performance, challenges, and practical application prospects of the transition metal oxide conversion reactions
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2019-11-18
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