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Toward High-Energy-Density Aqueous Zinc-Iodine Batteries: Multielectron Pathways. | LitMetric

AI Article Synopsis

  • Aqueous zinc-iodine batteries (ZIBs) are gaining popularity due to their efficient energy conversion and fast reaction rates, although the common two-electron types struggle with low energy density.
  • Recent advancements in four-electron ZIBs have improved energy density but face challenges with redox reversibility and issues like polyiodide shuttling.
  • The review discusses the mechanisms, limitations of ZIBs, emphasizes the importance of zinc utilization rates, and suggests solutions for recycling iodine electrodes to support sustainable energy storage.

Article Abstract

Aqueous zinc-iodine batteries (ZIBs) based on the reversible conversion between various iodine species have garnered global attention due to their advantages of fast redox kinetics, good reversibility, and multielectron conversion feasibility. Although significant progress has been achieved in ZIBs with the two-electron I/I pathway (2eZIBs), their relatively low energy density has hindered practical application. Recently, ZIBs with four-electron I/I/I electrochemistry (4eZIBs) have shown a significant improvement in energy density. Nonetheless, the practical use of 4eZIBs is challenged by poor redox reversibility due to polyiodide shuttling during I/I conversion and I hydrolysis during I/I conversion. In this Review, we thoroughly summarize the fundamental understanding of two ZIBs, including reaction mechanisms, limitations, and improvement strategies. Importantly, we provide an intuitive evaluation on the energy density of ZIBs to assess their practical potential and highlight the critical impacts of the Zn utilization rate. Finally, we emphasize the cost issues associated with iodine electrodes and propose potential closed-loop recycling routes for sustainable energy storage with ZIBs. These findings aim to motivate the practical application of advanced ZIBs and promote sustainable global energy storage.

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Source
http://dx.doi.org/10.1021/acsnano.4c10901DOI Listing

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