Enhanced Selectivity in the Electroproduction of H<sub>2</sub> O<sub>2</sub> via F/S Dual-Doping in Metal-Free Nanofibers.
basic_science · Level V
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- Record sourced from PubMed, PMID 36448504.
- Also identified by DOI 10.1002/adma.202208533.
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Abstract
Electrocatalytic two-electron oxygen reduction (2e<sup>-</sup> ORR) to hydrogen peroxide (H<sub>2</sub> O<sub>2</sub> ) is attracting broad interest in diversified areas including paper manufacturing, wastewater treatment, production of liquid fuels, and public sanitation. Current efforts focus on researching low-cost, large-scale, and sustainable electrocatalysts with high activity and selectivity. Here a large-scale H<sub>2</sub> O<sub>2</sub> electrocatalysts based on metal-free carbon fibers with a fluorine and sulfur dual-doping strategy is engineered. Optimized samples yield with a high onset potential of 0.814 V versus reversible hydrogen electrode (RHE), an almost ideal 2e<sup>-</sup> pathway selectivity of 99.1%, outperforming most of the recently reported carbon-based or metal-based electrocatalysts. First principle theoretical computations and experiments demonstrate that the intermolecular charge transfer coupled with electron spin redistribution from fluorine and sulfur dual-doping is the crucial factor contributing to the enhanced performances in 2e<sup>-</sup> ORR. This work opens the door to the design and implementation of scalable, earth-abundant, highly selective electrocatalysts for H<sub>2</sub> O<sub>2</sub> production and other catalytic fields of industrial interest.