科研速览 · Science Skim继续刷下去 · Keep skimming →
◆ Science Advances2025-11-05· Polysulfide

Nonfluorinated Membrane with a Decentralized Ion-Transport Network Enables Efficient and Sustainable Polysulfide Redox Flow Batteries

Feiran Wang, Shuang Luo, Jiafeng Lei, Fei Ai, Ka Lok Leung, Jun Fan, Yi‐Chun Lu

原始摘要(英文原文)· Original abstract
Aqueous redox flow batteries are one of the most promising electrochemical energy storage technologies for long-duration energy storage. Polysulfide-based redox flow batteries are particularly attractive owing to ultra-low-cost/earth-abundant active materials and full decoupling of power and energy. However, their practical application has been prevented by poor cycle life resulting from polysulfide-crossover and a heavy reliance on costly fluorinated membranes (Nafion117, USD $800 to $3,500 per square meter), along with the environmental concerns associated with the fluorine-processing industries. Common fluorinated membranes such as Nafion are not only expensive but also inadequate to prevent polysulfide-crossover due to oversized ion-transport channels resulting from aggregated microphase separation. Here, we develop non-fluorinated sulfonated polyethersulfone (SPES)-based membrane with decentralized ion-transport channels to create high-quantity, smaller ion-transport channels. The reduced channel size helps to mitigate polysulfide-crossover while the high-quantity channels help to maintain high ionic conductivity. The developed SPES membrane showed a 20 times higher ionic selectivity at a drastically reduced cost (USD $12 to $66 per square meter) compared to the commercial Nafion membrane. The low-cost SPES-based membrane enabled stable cycling of full polysulfide-ferrocyanide redox flow batteries with a high coulombic efficiency (>99.9%) and energy efficiency (average > 75%) for 1,600 cycles (> 6 months). This strategy demonstrated polysulfide-based redox flow batteries with a record longevity using a low-cost and sustainable membrane, paving the way for practical commercialization of polysulfide redox flow batteries. Acknowledgement: The work was supported by grants from the Research Grant Council (RGC) of the Hong Kong Special Administrative Region, China (project nos. RFS2223-4S03, CUHK 14302823, CUHK 14310124, and C1017-22G) and City University of Hong Kong Projects 7006111 and 7020112.
读原文 · Read the paper ↗

AI 追问PRO

登录后使用 AI 追问

讨论区

登录后参与讨论

相关论文 · Related

Nonfluorinated Membrane with a Decentralized Ion-Transport Network Enables Efficient and Sustainable Polysulfide Redox Flow Batteries — 科研速览 Science Skim