Photoelectrochemical reduction of N2to NH3under ambient conditions through hierarchical MoSe2@g-C3N4heterojunctions

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Abstract

Ammonia is the main precursor for the production of fertilizers, a hydrogen energy carrier and an emerging clean fuel that plays a crucial role in sustaining life on the globe. Herein, hybrid MoSe2@g-C3N4micro/nanostructures are described that can serve as photoelectrochemical (PEC) catalysts to fix N2into NH3in a basic electrolyte at a low potential (−0.3 Vvs.RHE) under ambient conditions.In situfunctionalization of the hierarchical micro/nanoflowers of MoSe2with exfoliated g-C3N4nanosheets dramatically boosts the faradaic efficiency and yield rate up to 28.91% and 7.72 μmol h−1cm−2respectively. The high PEC activity can be attributed to the hierarchical architecture, light-harvesting capability, tunable active sites and formation of heterojunctions, as confirmed by various characterization and density functional theory (DFT) calculations. Therefore, this work not only develops an effective procedure to obtain hierarchical heterojunction catalysts towards a high-efficiency NRR but also provides a deep understanding of artificial N2fixation at the MoSe2@g-C3N4interface.

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Mushtaq, M. A., Arif, M., Fang, X., Yasin, G., Ye, W., Basharat, M., … Yan, D. (2021). Photoelectrochemical reduction of N2to NH3under ambient conditions through hierarchical MoSe2@g-C3N4heterojunctions. Journal of Materials Chemistry A, 9(5), 2742–2753. https://doi.org/10.1039/d0ta10620h

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