4.6 Article

Single vs Dual Shuttle Cycling of Polyferrocenyl Cathodes for Redox Targeting Flow Batteries

期刊

ACS ENERGY LETTERS
卷 7, 期 10, 页码 3337-3344

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsenergylett.2c01794

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  1. Ohio State Energy Partners ENGIE [OSE-EP00002]
  2. Institute for Materials Research through a Kickstart Facility Grant

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This study evaluates the performance of ferrocenyl derivatives as shuttles in redox-targeting flow batteries and finds that a dual system outperforms other systems in terms of battery performance. The study also reveals that the rate of redox targeting dictates the system's performance and depth of charge.
Redox-targeting flow batteries (RTFBs) merge solution and solid-state redox chemistries to create scalable storage systems with the potential for high energy densities. This study systematically evaluates ferrocenyl derivatives as shuttles that charge/discharge an insoluble ferrocenyl polymer. The polymer utilization, voltaic efficiency, and discharge voltage of cells cycled by each shuttle alone (single system) or by combinations of shuttles (dual system) are directly compared. Here, the performance of a dual system exceeded that of any other system tested, and stable cycling was achieved with added polymer that quintupled the system's capacity. Most importantly, experimental and computational mechanistic studies provide insights into the interplay between the shuttle's redox potential (thermodynamic parameter) and the shuttle's rate of redox targeting reaction (kinetic parameter) with the solid. These data reveal that the rate of redox targeting dictates a system's performance and depth of charge once the potentials of shuttles and solids are comparable.

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