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March 22, 2026ACS Catalysis1 citationsOpen Access

Mercaptan-Mediated Ethylene Formation in Sulfur Oxidative Ethane Dehydrogenation on Iron Sulfide (FeS 2 ) Catalysts

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ABAnik BiswasTMTobin J. MarksJGJeffrey Greeley

Key Points

  • The research aims to investigate the use of sulfur as an oxidant in ethane dehydrogenation to produce ethylene.
  • Conduct periodic density functional theory calculations
  • Analyze surface structures and sulfur coverages of FeS2 catalysts
  • Examine temperature and pressure effects on catalytic activity
  • Identify pathways for ethylene formation on sulfur-covered FeS2 facets
  • Uncovered that FeS2 catalysts undergo temperature-dependent surface sulfidation
  • Identified catalytically active S-dimer species on the catalyst surface
  • Showed ethylene can be produced via mercaptan-mediated and conventional pathways
  • Highlighted the influence of local surface structures on catalytic activity

Abstract

Ethylene is a key feedstock for numerous industrial chemicals. It is conventionally produced via steam cracking, yet considerations of selectivity and downstream separation costs continue to motivate investigations of alternate production pathways. Catalytic ethane dehydrogenation (EDH) offers such an alternative, while the use of soft oxidants, such as sulfur, may alleviate the overoxidation that is characteristic of traditional oxidative approaches. This study explores the effectiveness of sulfur (S2) as an alternative oxidant for EDH. Using periodic density functional theory calculations, we explore the surface structures and sulfur coverages of FeS2 catalysts, which we have recently shown to be effective for this chemistry, under relevant temperature and pressure conditions. The results reveal that the catalyst experiences temperature-dependent surface sulfidation and that surface S-dimer species are catalytically active. The associated reaction energetics demonstrate that ethylene may be formed via both a mixed surface/gas phase mercaptan-mediated pathway and a conventional surface-catalyzed route on sulfur-covered FeS2 facets at intermediate temperatures. The preferred pathways and associated activation barriers are sensitive to the local structure of surface facets, with the sulfur vacancy formation energy and the average valence p-state electronic energy of surface sulfur atoms identified as plausible descriptors for the catalytic activity. The aggregate results shed light on the mechanistic interplay of sulfur and ethane on FeS2 surfaces and offer a potential pathway for developing efficient catalysts utilizing sulfur-based oxidants for selective ethylene production.

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Cite This Study

Biswas et al. (2026) studied this question.

synapsesocial.com/papers/69bf86ecf665edcd009e9044https://doi.org/10.1021/acscatal.5c07402
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