Abstract
Motivated by the increased demand for energy storage technologies with maximum power density and safety, zinc-air batteries have drawn extensive attention. However, developing a competent and robust bifunctional oxygen reduction and oxygen evolution reaction (ORR/OER) catalyst and studying the underlying active-site mechanisms with the aim of optimizing the electrochemical process remains challenging. In this work, defective/graphitic synergy in heteroatom-interlinked-triggered asphaltene (D/G-HASP) is exploredviaRaman spectroscopy, density functional theory (DFT), and other characterization approaches, in which reactions involving the oxygen-containing intermediates on the carbon substrate can be accelerated by the electron deficit triggered by heteroatoms, thus enhancing the oxygen reaction performance. As estimated, D/G-HASP reveals a superior half-wave potential (E1/2= 840 mV) and the lowest overpotential (η10= 310 mV) towards the ORR and OER compared to its other counterparts. Remarkably, zinc-air batteries primed with such an air-electrode show outstanding reversibility and stability. This effort hence delivers insightful understanding of the synergistic reaction principles of heteroatom-interlinked-triggering nanomaterials when used in zinc-air batteries.
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CITATION STYLE
Yasin, G., Ibrahim, S., Ibraheem, S., Ali, S., Iqbal, R., Kumar, A., … Zhao, W. (2021). Defective/graphitic synergy in a heteroatom-interlinked-triggered metal-free electrocatalyst for high-performance rechargeable zinc-air batteries. Journal of Materials Chemistry A, 9(34), 18222–18230. https://doi.org/10.1039/d1ta05812f
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