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Tuning H2S/CH4 competitive reactions in sulfur fuel chemical looping combustion via oxygen vacancy engineering of Ca/Zn spinel ferrite oxygen carriers

  • Jingjing Wang
  • , Lang Liu
  • , Chunyan Xu
  • , Yimin Xie
  • , Zongqi Li
  • , Yuanpei Lan
  • , Shan Ren
  • , Chenhong Yuan
  • Guangxi University for Nationalities
  • Guizhou University

Research output: Contribution to journalArticlepeer-review

Abstract

The interactions between CH4 and H2S in oxygen carriers (OCs) during chemical looping combustion (CLC) are a vital research focus, especially for enhancing syngas generation and reducing unwanted byproducts. This research thoroughly examines the behavior of CH4 and H2S on both pristine and oxygen-deficient surfaces of CaFe2O4 (CAF) and ZnFe2O4 (ZNF) OCs through a combination of experimental studies and density functional theory (DFT) simulations. Experimental findings show that the temperature during synthesis significantly affects the properties of OCs. Those created at 850 °C exhibited enhanced resistance to sulfur, while OCs synthesized at 950 °C and 1000 °C reached maximum H2S uptake levels of 108 mg/g and 142 mg/g, while still achieving CH4 conversion rates above 80% after 10 redox cycles. DFT simulation further clarifies that H2S preferentially occupies the Ca and Fe sites and dominates in co-adsorption with CH4. Oxygen vacancies reduce H2S adsorption while promoting CH4 binding, although the presence of oxygen vacancies weakens the repulsion between CH4 and H2S, the inhibitory effect of H2S on CH4 remains. These results offer essential insights for designing sulfur-resistant Ca-Fe/Zn-Fe spinel OCs and understanding the mechanisms behind the competitive reactions of CH4 and H2S, thus contributing to the advancement of effective CLC systems with enhanced carbon capture efficiency.

Original languageEnglish
Article number205905
JournalGas Science and Engineering
Volume150
DOIs
StatePublished - Jun 2026

Keywords

  • Chemical looping combustion
  • Density functional theory
  • Hydrogen sulfide
  • Oxygen vacancy
  • Spinel ferrite

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