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March 21, 2026Microporous and Mesoporous Materials2 citationsOpen Access

S-doped and N+S-co-doped carbon catalysts in redox reactions

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JBJ.-H. BölteBrandenburg University of Technology Cottbus-SenftenbergSUS. UtgenanntBrandenburg University of Technology Cottbus-SenftenbergMSM. SchmidtBrandenburg University of Technology Cottbus-Senftenberg

Key Points

  • The aim is to investigate how doping porous carbon materials with sulfur (S) and nitrogen (N) affects their ability to catalyze redox reactions.
  • Synthesis of a library of 54 porous carbons: undoped, S-doped, and N+S-co-doped.
  • Three S-containing precursors (DMSO, p-toluene sulfonic acid, thiophene) were used for doping.
  • Urea was employed as the N precursor for co-doping experiments.
  • Characterization techniques included N2-physisorption, XRD, Raman spectroscopy, elemental analysis, and XPS.
  • Catalytic tests were performed on oxidation of sulfurous acid, electrochemical oxygen reduction, and oxidative dehydrogenation.
  • Doping with S and N affects the catalytic activity of carbon materials in redox reactions.
  • N+S co-doping combines the effects of S and N but does not exceed their individual contributions.
  • S species behave similarly to O species in the context of catalysis on carbon surfaces.
  • Higher N+S co-doping enhances the reactivity through increased oxidized S and O species.

Abstract

In this contribution, the effects of heteroatom doping of porous carbon materials with S and N on their ability to catalyze redox-reactions involving the activation of molecular oxygen were investigated. For this purpose, a library of in total 54 undoped, S-doped and N+S-co-doped porous carbons was obtained via a template-based synthesis procedure using mesoporous silica gel as the template. To understand the influence of S on the properties of the doped carbons three different S-containing precursors, namely dimethyl sulfoxide (DMSO), p -toluene sulfonic acid and thiophene, were used. In order to investigate possible synergistic effects of S- and N-co-doping, urea was employed as the sole N-containing precursor. The obtained carbon catalysts were characterized by selected methods such as N 2 -physisorption at 77 K, X-ray diffraction (XRD), Raman spectroscopy, elemental analysis and X-ray photoelectron spectroscopy (XPS). Each carbon catalyst was tested in the oxidation of sulfurous acid (OSA) to sulfuric acid, the electrochemical oxygen reduction (ORR) and the oxidative dehydrogenation (ODH) of ethylbenzene. Owing to the similar textural and structural properties achieved through template-based synthesis of the carbon catalyst library, the results of the catalytic redox-reactions could directly be related to the respective heteroatom dopant. The observed trends indicate that in these redox-reactions S-species behave somewhat similar to O-species bound on the carbon surface. Furthermore, it can be shown that N+S co-doping rather combines the positive and negative effects of the individual dopants on the activity, than creating a synergistic effect that surpasses the individual contribution. • A great number of N-, S- and N+S-co-codoped porous carbons was synthesized. • S content follows precursor volatility, while N+S-co-doping increases N uptake. • Samples share comparable textural properties and mainly amorphous carbon framework. • N+S co-doping increases oxidized S and O species by facilitating oxygen activation. • N improves OSA and ORR, while S enhances ODH; effects depend on the reaction type.

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Cite This Study

Bölte et al. (2026) studied this question.

synapsesocial.com/papers/69be34af6e48c4981c672db2https://doi.org/10.1016/j.micromeso.2026.114129
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