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Atomically Dispersed CoN<sub>3</sub>C<sub>1</sub>‐TeN<sub>1</sub>C<sub>3</sub> Diatomic Sites Anchored in N‐Doped Carbon as Efficient Bifunctional Catalyst for Synergistic Electrocatalytic Hydrogen Evolution and Oxygen Reduction

55

Citations

30

References

2022

Year

Abstract

A encapsulation-adsorption-pyrolysis strategy for the construction of atomically dispersed Co-Te diatomic sites (DASs) that are anchored in N-doped carbon is reported as an efficient bifunctional catalyst for electrocatalytic hydrogen evolution reaction (HER) and oxygen reduction reaction (ORR). The as-constructed catalyst shows the stable CoN<sub>3</sub> C<sub>1</sub> -TeN<sub>1</sub> C<sub>3</sub> coordination structure before and after HER and ORR. The *OOH/*H intermediate species are captured by in situ Raman and in situ attenuated total reflectance-surface enhanced infrared absorption spectroscopy, indicating that the reactant O<sub>2</sub> /H<sub>2</sub> O molecule has a strong interaction with the Co site, revealing that Co<sup>δ+</sup> is an effective active site. Theoretical calculations show that the Co<sup>δ+</sup> has adsorption-activation function and the neighboring Te<sup>δ+</sup> acts as an electron donor adjusting the electronic structure of Co<sup>δ+</sup> , promoting the dissociation of H<sub>2</sub> O molecules and the adsorption of H and oxygen-containing intermediates in HER and ORR. In the meanwhile, the nearest C atom around Co also profoundly affects the adsorption of H atoms. This results in the weakening of the OH adsorption and enhancement of H adsorption, as well as the more stable water molecule dissociation transition state, thus significantly boosting ORR and HER performance.

References

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