A High-Performance Quasi-Solid-State Aqueous Zinc-Dual Halogen Battery.
basic_science · Level V
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- Record sourced from PubMed, PMID 36512756.
- Also identified by DOI 10.1021/acsnano.2c06362.
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Abstract
Aqueous zinc-based batteries are promising candidates for the grid-scale energy storage owing to their nonflammability, ecofriendliness, and low cost. Nevertheless, their practical applications are hindered by the relatively low capacity and energy density. Herein, we develop a quasi-solid-state aqueous zinc-dual halogen battery composed of freestanding carbon cloth-iodine cathode and in situ prepared concentrated aqueous gel electrolyte. The freestanding composite cathode and aqueous gel electrolyte can afford iodine source and bromide ions, respectively, thus activating the I<sup>-</sup>/I<sup>0</sup>/I<sup>+</sup> reaction by forming [IBr<sub>2</sub>]<sup>-</sup> interhalogen. Furthermore, the conversion reaction of Br<sup>-</sup>/Br<sup>0</sup> in [IBr<sub>2</sub>]<sup>-</sup> interhalogen is stimulated due to the catalytic effect of iodine. Therefore, this rationally designed aqueous dual halogen conversion chemistry enables three successive redox reactions (i.e., I<sup>-</sup>/I<sup>0</sup>, I<sup>0</sup>/I<sup>+</sup>, and Br<sup>-</sup>/Br<sup>0</sup>). Additionally, the LiNO<sub>3</sub> additive and acrylamide (AM)-based polymer matrix not only stabilizes the anode/electrolyte interface but also restrains the side reactions and dissolution/diffusion of active species. Consequently, the as-assembled aqueous zinc-dual halogen battery exhibits high areal capacity and energy density.