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Chemical looping oxidation of CH 4 with 99.5% CO selectivity over V 2 O 3 ‐based redox materials using CO 2 for regeneration
Author(s) -
Ge Yuanzheng,
He Tao,
Wang Zhiqi,
Han Dezhi,
Li Jianqing,
Wu Jingli,
Wu Jinhu
Publication year - 2020
Publication title -
aiche journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.958
H-Index - 167
eISSN - 1547-5905
pISSN - 0001-1541
DOI - 10.1002/aic.16772
Subject(s) - redox , selectivity , stoichiometry , chemical looping combustion , chemistry , catalysis , methane , oxygen , oxygen storage , inorganic chemistry , carbide , chemical engineering , organic chemistry , engineering
The main challenge of chemical looping dry reforming of methane (CLDRM) is the development of a high‐performance redox material. In this study, V 2 O 3 was proved to be a unique redox material possessing high oxygen storage capacity (421.6 mg/g‐V 2 O 3 , CH 4 consumption base) and strong carbon‐deposition suppressing capability. It can be reduced to carbide by CH 4 , and the carbide can be reoxidized to V 2 O 3 with CO 2 . Based on this redox cycle, CH 4 conversion with 99.5% CO selectivity coupled with efficient CO 2 splitting to CO was realized successively. However, the CH 4 conversion over pristine V 2 O 3 is low (<50%) and not stable, therefore catalytic activation of C‐H bonds combined with structural modification of V 2 O 3 was carried out to accelerate the stoichiometric reactions and improve the redox stability. Finally, a maximum CH 4 conversion of 81.7% with stable performance during cycles was reached, and further investigation confirmed the series reaction mechanism and identified the rate‐controlling step.

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