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Theoretical insights into the size effect of α-Fe2O3 oxygen carrier on chemical looping reforming of methane

  • Hui Xin Zhang
  • , Xue Su
  • , Xi Yang Yu
  • , Zheng Qing Huang
  • , Bolun Yang
  • , Chun Ran Chang
  • Xi'an Jiaotong University
  • Yulin University

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

The regulation of the oxygen carrier size is crucial to the chemical looping reforming (CLR) of methane to syngas. However, there is still a lack of in-depth understanding of the relationship between oxygen carrier size and its catalytic performance. Herein, we perform density functional theory (DFT) calculations combined with microkinetic simulations to study the surface catalytic behavior and oxygen supply capacity of different sizes of (Fe2O3)n clusters (n = 4, 13, 21, 40, ∞). Our results demonstrate that when the cluster diameter is ∼1.8 nm, that is, the (Fe2O3)21 cluster, the CH4 dissociation barrier is the lowest due to the more positive charge of the central Fe site. Meanwhile, the CH4 dissociation barrier on this cluster is also close to the oxygen migration barrier, achieving a precise matching between oxygen migration rate and surface catalytic reaction rate, thereby rendering high production rate towards syngas.

Original languageEnglish
Article number120511
JournalChemical Engineering Science
Volume299
DOIs
StatePublished - 5 Nov 2024

Keywords

  • Chemical looping
  • FeO cluster
  • Methane
  • Rate-matching
  • Syngas

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