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Unraveling the Mechanism of Ammonia Electrooxidation by Coupled Differential Electrochemical Mass Spectrometry and Surface-Enhanced Infrared Absorption Spectroscopic Studies. | LitMetric

AI Article Synopsis

  • * The research used differential electrochemical mass spectrometry and infrared absorption spectroscopy to analyze species formed during the electrochemical ammonia oxidation on platinum, identifying key adsorbed and solution products.
  • * Findings revealed that the coupling of NH ad-species is the rate-determining step at high potentials, while dehydrogenation plays that role at low potentials, providing valuable insights for designing better catalysts for ammonia oxidation.

Article Abstract

Ammonia electrooxidation has received considerable attention in recent times due to its potential application in direct ammonia fuel cells, ammonia sensors, and denitrification of wastewater. In this work, we used differential electrochemical mass spectrometry (DEMS) coupled with attenuated total reflection-surface-enhanced infrared absorption (ATR-SEIRA) spectroscopy to study adsorbed species and solution products during the electrochemical ammonia oxidation reaction (AOR) on Pt in alkaline media, and to correlate the product distribution with the surface ad-species. Hydrazine electrooxidation, hydroxylamine electrooxidation/reduction, and nitrite electroreduction on Pt have also been studied to enhance the understanding of the AOR mechanism. NH, NH, NH, NO, and NO ad-species were identified on the Pt surface with ATR-SEIRA spectroscopy, while N, NO, and NO were detected with DEMS as products of the AOR. N is formed through the coupling of two NH ad-species and then subsequent further dehydrogenation, while the dimerization of HNO leads to the formation of NO. The NH-NH coupling is the rate-determining step (rds) at high potentials, while the first dehydrogenation step is the rds at low potentials. These new spectroscopic results about the AOR and insights could advance the search and design of more effective AOR catalysts.

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Source
http://dx.doi.org/10.1021/jacs.4c02621DOI Listing

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