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Electrolyte design for reversible zinc metal chemistry. | LitMetric

AI Article Synopsis

  • Metal anodes show potential for future energy storage, but issues like dendrite formation and chemical reactions make them hard to use efficiently.
  • Researchers developed a specialized electrolyte that enhances efficiency to over 99.9% for zinc metal anodes by adjusting salts and solvents for better surface structure and anode-electrolyte interaction.
  • The new dual-salt electrolyte achieves a Coulombic efficiency of 99.95% and allows for an anode-free cell to operate stably for over 1000 cycles, indicating significant advancements in metal-based battery technologies.

Article Abstract

Metal anodes hold significant promise for next-generation energy storage, yet achieving highly reversible plating/stripping remains challenging due to dendrite formation and side reactions. Here we present a tailored electrolyte design to surpass 99.9% Coulombic efficiency (CE) in zinc metal anodes by co-engineering salts and solvents to address two critical factors: plating morphology and the anode-electrolyte interface. By integrating a dual-salt approach and organic co-solvent design, these issues can be effectively addressed. The resulting hybrid dual-salt electrolyte renders CE of 99.95% at 1 mA cm at a medium concentration (3.5 m). Building upon the near-unity CE, an anode-free cell with ZnI cathode can stably run more than 1000 cycles under practical conditions with minimal capacity loss. Our findings provide a promising pathway for the design of reversible metal anodes, advancing metal-based battery technologies for broader energy storage applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11695615PMC
http://dx.doi.org/10.1038/s41467-024-55657-1DOI Listing

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