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April 13, 2026Angewandte Chemie0 citations

Suppressing Metallic Co 0 Formation in Co‐Based Catalyst by In‐Situ Selective H 2 Oxidation for Efficient Ethane Dehydrogenation

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DZDonghong ZhangBZBaiJie ZhangDLDong Liu

Key Points

  • This research aims to suppress the formation of metallic Co to improve cobalt-based catalysts for ethane dehydrogenation.
  • Integrated CoO x /HZSM‐5 catalyst with CeO 2 -promoted Bi 2 O 3 as a selective H 2 oxidation carrier.
  • Utilized chemical looping oxidative dehydrogenation (CL‐ODH) conditions for testing.
  • Conducted pulse reaction experiments and density functional theory (DFT) calculations to analyze performance.
  • Achieved 40% ethane conversion and over 80% ethylene selectivity at 600°C.
  • Maintained stable performance over 100 redox cycles.
  • Inhibition of metallic Co formation led to reduced coke deposition.

Abstract

ABSTRACT Cobalt‐based catalysts are attractive for ethane dehydrogenation owning to their high ethane activation activity. However, in the H 2 ‐rich environment generated during the reaction, cobalt species are readily reduced to metallic Co 0 , leading to coke deposition and catalyst deactivation. Here, we present a tandem strategy that integrates a CoO x /HZSM‐5 (Co/HZ) dehydrogenation catalyst with CeO 2 ‐promoted Bi 2 O 3 (CeBiO x ) as a selective H 2 oxidation oxygen carrier. Under chemical looping oxidative dehydrogenation (CL‐ODH) conditions, CeBiO x selectively oxidizes over 75% of the in‐situ generated H 2 , thereby effectively suppressing the formation of metallic Co 0 in Co/HZ. As a result, an ethane conversion of 40% and an ethylene selectivity exceeding 80% are achieved at 600°C, with stable performance maintained over 100 redox cycles. Pulse reaction experiments, semi in‐situ characterizations, and density functional theory (DFT) calculations collectively reveal that the selective oxidation of H 2 by CeBiO x inhibits the reduction of cobalt species to Co 0 , thereby mitigating coke formation and enhancing ethylene yield. By coupling an ethane dehydrogenation catalyst with a selective H 2 oxidation oxygen carrier, this work establishes a new paradigm for stabilizing active Co species in Co‐based ethane dehydrogenation systems and intensifying ethylene production.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69dc88583afacbeac03ea392https://doi.org/10.1002/ange.8471327
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