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February 2, 2026Biochar4 citationsOpen Access

Coffee grounds derived porous nitrogen-rich biochar as a metal-free catalyst for efficient selective oxidation of hydrogen sulfide to sulfur

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FZFei ZhaoZPZibin PanFWFang Wang

Key Points

  • This research aims to develop a sustainable metal-free catalyst for the selective oxidation of hydrogen sulfide to sulfur.
  • Synthesis of a metal-free catalyst from coffee grounds through activation and pyrolysis.
  • Evaluation of catalyst performance under various conditions including temperature and humidity.
  • Application of density functional theory (DFT) calculations to analyze active sites and reaction mechanisms.
  • Achieved over 99% conversion of hydrogen sulfide with near-perfect sulfur selectivity.
  • Maintained catalyst stability under high CO2 concentrations and humid conditions.
  • Identified dual-active sites adjacent to pyridine-N configurations enhancing H2S adsorption and O2 activation.

Abstract

Abstract The development of metal-free catalysts for efficient selective catalytic oxidation of hydrogen sulfide (H 2 S-SCO) to elemental sulfur represents a sustainable solution for toxic gas purification. Herein, we synthesized a regenerable metal-free catalyst through facile activation and pyrolysis of coffee grounds. The optimized catalyst demonstrated exceptional H 2 S-SCO performance at 180 ℃, achieving > 99% H 2 S conversion with near-perfect sulfur selectivity (~ 100%) while maintaining remarkable stability under humid conditions and high CO 2 concentrations. These superior properties originate from the synergistic effects of elevated nitrogen doping (17.33 at.%), abundant defect edge sites, and hierarchical porosity. Density functional theory (DFT) calculations revealed that carbon atoms adjacent to pyridine-N configurations serve as dual-active sites, facilitating H 2 S adsorption/dissociation and O 2 activation through optimized electron redistribution. A plausible reaction mechanism was established based on experimental and theoretical analyses. This work provides fundamental insights into designing cost-effective, biomass-derived carbon catalysts for industrial gas purification while addressing agricultural waste valorization. Graphical Abstract

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Cite This Study

Zhao et al. (2026) studied this question.

synapsesocial.com/papers/6980fe35c1c9540dea8100ebhttps://doi.org/10.1007/s42773-025-00541-4
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