Superhalide structure and iodide-proof interphase via electrolyte regulation enable ultrastable zinc-iodine batteries
Energy and Environmental Science, ISSN: 1754-5706, Vol: 17, Issue: 22, Page: 8643-8657
2024
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Example: if you select the 1-year option for an article published in 2019 and a metric category shows 90%, that means that the article or review is performing better than 90% of the other articles/reviews published in that journal in 2019. If you select the 3-year option for the same article published in 2019 and the metric category shows 90%, that means that the article or review is performing better than 90% of the other articles/reviews published in that journal in 2019, 2018 and 2017.
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Article Description
Challenges lie in the sluggish redox kinetics and uncontrolled side reactions of traditional aqueous zinc-iodine batteries, making them inferior to other battery congeners. Herein, we introduce a superhalide solvation structure and an iodide-proof solid electrolyte interphase to realize a stable iodide redox reaction and zinc plating/stripping. This is achieved by electrolyte optimization synergy using an organic iodide source and a hydroxyl solvent. Notably, the dissociative electron-donating I anions can participate in the zinc solvation sheath and coordinate in the form of a superhalide, which increase electron transfer to Zn and reduce the electron loss of the solvent, thus enhancing the reduction stability of the electrolyte. Meanwhile, a solvation-complex-triggered, inorganic/organic-rich, in situ-formed interphase featuring iodide-proof ability is induced, thereby suppressing the side reactions involved with the free shuttling of iodide and facilitating dendrite-free zinc deposition. The combination of metrics endows the battery with a superior rate performance of 127 mA h g at 5.0 A g and a high capacity retention of 86% for long-term 45 000 cycles. Finally, reversible operation is also obtained under practical conditions, including a small N/P of 4.7 or a low temperature of −18 °C. Our work provides new insights into fine-tuning electrolyte formulation for reliable halide conversion.
Bibliographic Details
Royal Society of Chemistry (RSC)
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