Challenges and Prospects of Sodium‐Ion and Potassium‐Ion Batteries for Mass Production

Проблемы и перспективы натрий-ионных и калий-ионных аккумуляторных батарей для массового производства
K. Sada, Joe Darga, Arumugam Manthiram
2023-09-04

chemical degradationgrid-scale energy storagephase transitionspotassium-ion batteriessodium-ion batteries
Abstract The exponential growth of the lithium‐ion (LIB) market is causing a significant disparity between the supply chain and demand for its resources. In this regard, sodium‐ion and potassium‐ion batteries are promising alternatives to LIBs due to their low cost. However, the larger sizes of Na + and K + ions create challenges that prevent them from achieving energy densities comparable to LIBs while maintaining an acceptable cycle life. In this perspective, the aim is to evaluate the status of Na‐ion and K‐ion batteries and the challenges associated with them on both fundamental and commercial levels. The focus is on the structural instability arising from phase transitions during cycling, intricate chemical degradation processes, and potential avenues for enhancing their performance with a specific goal of improving their viability for grid‐scale energy storage. Materials production and abundance limitations for the chemistries of the state‐of‐the‐art materials and account for critical parameters from both the perspective of researchers and investors are analyzed. This analysis aims to provide insights into the strategic trade‐offs required to effectively implement the technology in real‐world applications, such as grid‐scale storage and other areas. Furthermore, the utilization of metals with low or no supply‐chain problems as an important aspect of these trade‐offs is considered.
1
Improving viability for grid-scale storage requires addressing material production, elemental abundance, and supply-chain constraints alongside electrochemical performance.
2
Real-world deployment requires strategic trade-offs evaluated from both research and investment perspectives, including preference for metals with low or no supply-chain risks.
3
Sodium-ion and potassium-ion batteries are positioned as low-cost alternatives to lithium-ion batteries amid growing resource supply–demand imbalances.
4
Structural instability caused by cycling-induced phase transitions and complex chemical degradation are identified as fundamental barriers to performance and commercialization.
5
The larger Na+ and K+ ions limit achievable energy density while complicating retention of acceptable cycle life compared with lithium-ion systems.

sodium-ion and potassium-ion batteries for mass production and grid-scale energy storage

their structural instability, chemical degradation, performance, energy-density/cycle-life trade-offs, and material supply-chain viability

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2023-09-04
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K. Sada
Joe Darga
Arumugam Manthiram
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