Progress on Transition Metal Ions Dissolution Suppression Strategies in Prussian Blue Analogs for Aqueous Sodium-/Potassium-Ion Batteries
Прогресс в разработке стратегий подавления растворения ионов переходных металлов в аналогах берлинской лазури для водных натрий-/калий-ионных батарей
2024-02-21
SCID: 54.1/6zewkga7
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Prussian blue analogsaqueous potassium-ion batteriesaqueous sodium-ion batteriescapacity fadetransition metal ion dissolution
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Abstract (AI)
Aqueous sodium-ion batteries (ASIBs) and aqueous potassium-ion batteries (APIBs) present significant potential for large-scale energy storage due to their cost-effectiveness, safety, and environmental compatibility. Nonetheless, the intricate energy storage mechanisms in aqueous electrolytes place stringent requirements on the host materials. Prussian blue analogs (PBAs), with their open three-dimensional framework and facile synthesis, stand out as leading candidates for aqueous energy storage. However, PBAs possess a swift capacity fade and limited cycle longevity, for their structural integrity is compromised by the pronounced dissolution of transition metal (TM) ions in the aqueous milieu. This manuscript provides an exhaustive review of the recent advancements concerning PBAs in ASIBs and APIBs. The dissolution mechanisms of TM ions in PBAs, informed by their structural attributes and redox processes, are thoroughly examined. Moreover, this study delves into innovative design tactics to alleviate the dissolution issue of TM ions. In conclusion, the paper consolidates various strategies for suppressing the dissolution of TM ions in PBAs and posits avenues for prospective exploration of high-safety aqueous sodium-/potassium-ion batteries.
Key Findings
1
Prussian blue analogs are promising cathodes for aqueous sodium- and potassium-ion batteries because of their open three-dimensional frameworks and facile synthesis.
2
Rapid transition-metal-ion dissolution in aqueous electrolytes compromises PBA structural integrity, causing fast capacity fading and limited cycle life.
3
Recent mitigation strategies focus on innovative PBA design approaches that suppress transition-metal-ion dissolution and improve cycling stability.
4
The review consolidates current dissolution-suppression strategies and identifies future directions for safer, durable aqueous sodium- and potassium-ion batteries.
5
Transition-metal dissolution is linked to PBA structural characteristics and redox processes occurring in aqueous environments.
Research Object
Prussian blue analogs (PBAs) used as host electrode materials in aqueous sodium-ion and potassium-ion batteries
Research Subject
transition-metal-ion dissolution mechanisms and suppression strategies governing structural integrity, capacity retention, and cycle life
Publication Details
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2024-02-21
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