AI Article Synopsis

  • The PPFe(N)(H) catalyst excels in producing ammonia when exposed to light but favors hydrogen production under heat, making it a prime candidate for exploring the reaction dynamics of both processes.
  • A range of computational methods was employed to analyze the mechanisms behind the nitrogen reduction reaction (NRR) and hydrogen evolution reaction (HER), including energy profiles and rate constants for the different steps.
  • Findings align with experimental data, suggesting that light-driven hydrogen elimination from the catalyst facilitates the formation of a key intermediate (PPFe(N)) for NRR, although this step faces challenges due to high energy barriers.

Article Abstract

The PPFe(N)(H) catalyst showed a significant ammonia yield under light irradiation. However, under thermal conditions, the hydrogen evolution reaction (HER) is favored over the nitrogen reduction reaction (NRR), making PPFe(N)(H) an ideal system for studying the competition between both reactions. In this study, we used a series of computational tools to elucidate the photochemical reaction mechanism for the NRR and thermal pathways leading to the HER with this catalyst. We calculated the energy profile for each transformation and estimated the rate constants for each step. Our results, which are consistent with experimental observations, indicate that photoinduced H elimination from PPFe(N)(H) promotes the formation of PPFe(N), which is on-path for NRR. However, this elimination process is kinetically hindered due to high-energy barriers. Furthermore, our calculations reveal enhanced dinitrogen activation upon the conversion of PPFe(N)(H) to PPFe(N).

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11539056PMC
http://dx.doi.org/10.1021/acs.inorgchem.4c04006DOI Listing

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