A Static Tin-Manganese Battery with 30000-Cycle Lifespan Based on Stabilized Mn<sup>3+</sup>/Mn<sup>2+</sup> Redox Chemistry.
basic_science · Level V
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- Record sourced from PubMed, PMID 36853201.
- Also identified by DOI 10.1021/acsnano.3c00242.
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Abstract
High-potential Mn<sup>3+</sup>/Mn<sup>2+</sup> redox couple (>1.3 V vs SHE) in a static battery system is rarely reported due to the shuttle and disproportionation of Mn<sup>3+</sup> in aqueous solutions. Herein, based on reversible stripping/plating of the Sn anode and stabilized Mn<sup>2+</sup>/Mn<sup>3+</sup> redox couple in the cathode, an aqueous Sn-Mn full battery is established in acidic electrolytes. Sn anode exhibits high deposition efficiency, low polarization, and excellent stability in acidic electrolytes. With the help of H<sup>+</sup> and a complexing agent, a reversible conversion between Mn<sup>2+</sup> and Mn<sup>3+</sup> ions takes place on the graphite surface. Pyrophosphate ligand is initially employed to form a protective layer through a complexation process with Sn<sup>4+</sup> on the electrode surface, effectively preventing Mn<sup>3+</sup> from disproportionation and hindering the uncontrollable diffusion of Mn<sup>3+</sup> to electrolytes. Benefiting from the rational design, the full battery delivers satisfied electrochemical performance including a large capacity (0.45 mAh cm<sup>-2</sup> at 5 mA cm<sup>-2</sup>), high discharge plateau voltage (>1.6 V), excellent rate capability (58% retention from 5 to 30 mA cm<sup>-2</sup>), and superior cycling stability (no decay after 30 000 cycles). The battery design strategy realizes a robustly stable Mn<sup>3+</sup>/Mn<sup>2+</sup> redox reaction, which broadens research into ultrafast acidic battery systems.