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January 25, 2026Nanomaterials1 citationsOpen Access

Selective Acetylene Hydrogenation: Influence of Carbon Supports on the Stabilization of Pd4S-like Active Sites

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ECEduardo Campos-CastellanosIRI. Rodríguez‐RamosMBMiguel A. Bañares

Key Points

  • The research aims to understand how different carbon supports and palladium precursors affect catalytic performance in acetylene hydrogenation.
  • Prepared six Pd-based catalysts on four carbon materials: HHTs, carbon nanotubes, activated carbon, and graphite.
  • Utilized sulfate and chloride precursors for catalyst synthesis.
  • Conducted catalytic tests in a continuous fixed-bed reactor.
  • Employed characterization techniques such as XPS, TEM, and EDS to analyze the catalysts.
  • HHT-supported catalysts exhibited the highest ethylene selectivity and long-term stability.
  • Catalysts from sulfate precursors showed enhanced selectivity compared to chloride-derived ones.
  • Formation of sulfur-species (S2−) interacting with metallic Pd contributed to improved performance.
  • Graphitic supports like HHT favor sulfur retention, supporting stable Pd–S motifs.

Abstract

This study examines how both the nature of the carbon support and the palladium precursor influence catalytic performance in acetylene hydrogenation. Six Pd-based catalysts were prepared on four carbon materials—high-heat-treated fibers (HHTs), carbon nanotubes, activated carbon and high surface area graphite—using either sulfate or chloride precursors. Catalytic tests performed in a continuous fixed-bed reactor reveal that HHT-supported catalysts achieve the highest ethylene selectivity and long-term stability, while in general catalysts derived from sulfate precursors exhibit enhanced selectivity compared to their chloride-derived counterparts. These improvements are consistent with the formation of sulfur, which may be incorporated as sub-stoichiometric sulfide species (S2−) interacting with metallic Pd, as revealed by the XPS results, rather than to palladium dispersion alone. The role of the carbon support in stabilizing these sites was further assessed by complementary characterization techniques, including transmission electron microscopy, energy-dispersive X-ray spectroscopy, X-ray photoelectron spectroscopy and Raman spectroscopy. The combined results indicate that highly graphitic supports such as HHT fibers favor sulfur retention at the catalyst surface, thereby promoting the stability and catalytic performance of Pd–S active motifs during acetylene hydrogenation.

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Cite This Study

Campos-Castellanos et al. (2026) studied this question.

synapsesocial.com/papers/6975b2eafeba4585c2d6e576https://doi.org/10.3390/nano16030157
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