TY - JOUR
T1 - Modified Ni-carbonate interfaces for enhanced CO2 methanation activity
T2 - Tuned reaction pathway and reconstructed surface carbonates
AU - Shen, Xuqiang
AU - Wang, Zizhou
AU - Wang, Qiaojuan
AU - Tumurbaatar, Chantsalmaa
AU - Bold, Tungalagtamir
AU - Liu, Wen
AU - Dai, Yihu
AU - Tang, Yongming
AU - Yang, Yanhui
N1 - Publisher Copyright:
© 2022 Elsevier Inc.
PY - 2022/9
Y1 - 2022/9
N2 - A Ni/Zr-La2O2CO3 catalyst with interfaces between Ni metal and Zr-modified carbonate support was used for atmospheric CO2 methanation reaction, exhibiting 81% conversion and 99.6% CH4 selectivity at 300 °C. The Zr4+ ions incorporated in La2O2CO3 lattices properly strengthened the Ni-carbonate interaction for enhancing the Ni dispersion and hydrogen activation ability of the catalyst. The Zr-modification could also tune the surface basic property for promoting the adsorptive dissociation of CO2. In-situ DRIFT spectra demonstrated that only the hydrogenation reaction pathway of formate intermediates was proceeded in Ni/La2O2CO3-catalyzed CO2 methanation. As a contrast, the hydrogenation pathways of CO and formate intermediates with relatively high activity were co-existed at the modified Ni-Zr-La2O2CO3 interfaces. Furthermore, the isotopic data evidenced that dynamic reconstruction and interconversion of the surface carbonate species occurred in the reaction, which might contribute to the key steps of CO2 dissociation and intermediates transformation.
AB - A Ni/Zr-La2O2CO3 catalyst with interfaces between Ni metal and Zr-modified carbonate support was used for atmospheric CO2 methanation reaction, exhibiting 81% conversion and 99.6% CH4 selectivity at 300 °C. The Zr4+ ions incorporated in La2O2CO3 lattices properly strengthened the Ni-carbonate interaction for enhancing the Ni dispersion and hydrogen activation ability of the catalyst. The Zr-modification could also tune the surface basic property for promoting the adsorptive dissociation of CO2. In-situ DRIFT spectra demonstrated that only the hydrogenation reaction pathway of formate intermediates was proceeded in Ni/La2O2CO3-catalyzed CO2 methanation. As a contrast, the hydrogenation pathways of CO and formate intermediates with relatively high activity were co-existed at the modified Ni-Zr-La2O2CO3 interfaces. Furthermore, the isotopic data evidenced that dynamic reconstruction and interconversion of the surface carbonate species occurred in the reaction, which might contribute to the key steps of CO2 dissociation and intermediates transformation.
KW - CO methanation
KW - Carbonate support
KW - Heterogeneous catalysis
KW - Metal-support interaction
KW - Ni catalyst
KW - Surface reconstruction
UR - http://www.scopus.com/inward/record.url?scp=85132337577&partnerID=8YFLogxK
U2 - 10.1016/j.jcat.2022.06.001
DO - 10.1016/j.jcat.2022.06.001
M3 - 文章
AN - SCOPUS:85132337577
SN - 0021-9517
VL - 413
SP - 48
EP - 58
JO - Journal of Catalysis
JF - Journal of Catalysis
ER -