<p>MgO–Al<sub>2</sub>O<sub>3</sub>-supported metallic Ni and bimetallic Ni–Zn catalysts (referred as Ni/MgAl and Ni<sub>x</sub>Zn/MgAl with the Ni/Zn atomic ratio of <i>x</i>, respectively) were prepared by the coprecipitation method, and their performance for methane dry reforming (DRM) was tested on an atmospheric quartz fixed-bed. The XRD, magnetic measurement, H<sub>2</sub>-TPR, TEM/EDS and XPS results demonstrate that metallic Ni and Ni–Zn alloy form in Ni/MgAl and Ni<sub>x</sub>Zn/MgAl, respectively. With reducing the Ni/Zn atomic ratio, the amount of surface Ni sites decreases, while the CO<sub>2</sub> adsorption capacity and strength increase due to the presence of Zn. Ni<sub>x</sub>Zn/MgAl gives higher activity than Ni/MgAl for DRM, mainly due to the suppression of carbon deposition and graphitization on Ni–Zn alloy and the enhanced adsorption of CO<sub>2</sub>. Under the condition of 800&#xa0;°C, CH<sub>4</sub>/CO<sub>2</sub> molar ratio of 1 and weight hourly space velocity of 20,000 mL&#xa0;g<sub>cat</sub><sup>−1</sup>&#xa0;h<sup>−1</sup>, Ni/MgAl gives the CH<sub>4</sub> and CO<sub>2</sub> conversions of 76% and 80%, respectively. With decreasing Ni/Zn atomic ratio from 7 to 2, the CH<sub>4</sub> and CO<sub>2</sub> conversions on Ni<sub>x</sub>Zn/MgAl first increase and then decrease, and Ni<sub>5</sub>Zn/MgAl has the highest activity with the CH<sub>4</sub> and CO<sub>2</sub> conversions of 81% and 87%, respectively. During the time on stream of 100&#xa0;h at 800&#xa0;°C, Ni<sub>5</sub>Zn/MgAl exhibits better stability than Ni/MgAl, mainly ascribed to its less amount of filamentous graphite carbon. In all, the formation of Ni–Zn alloy enhances the catalyst activity and remarkably suppresses the graphitization of carbonaceous deposit.</p>

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Effect of Zn on performance of Ni/Al2O3–MgO catalyst for dry reforming of methane: enhancing activity and remarkably suppressing graphitization of carbonaceous deposit

  • Jie Yang,
  • Hailong Fang,
  • Huanjin Jiang,
  • Wenhao Wang,
  • Jixiang Chen

摘要

MgO–Al2O3-supported metallic Ni and bimetallic Ni–Zn catalysts (referred as Ni/MgAl and NixZn/MgAl with the Ni/Zn atomic ratio of x, respectively) were prepared by the coprecipitation method, and their performance for methane dry reforming (DRM) was tested on an atmospheric quartz fixed-bed. The XRD, magnetic measurement, H2-TPR, TEM/EDS and XPS results demonstrate that metallic Ni and Ni–Zn alloy form in Ni/MgAl and NixZn/MgAl, respectively. With reducing the Ni/Zn atomic ratio, the amount of surface Ni sites decreases, while the CO2 adsorption capacity and strength increase due to the presence of Zn. NixZn/MgAl gives higher activity than Ni/MgAl for DRM, mainly due to the suppression of carbon deposition and graphitization on Ni–Zn alloy and the enhanced adsorption of CO2. Under the condition of 800 °C, CH4/CO2 molar ratio of 1 and weight hourly space velocity of 20,000 mL gcat−1 h−1, Ni/MgAl gives the CH4 and CO2 conversions of 76% and 80%, respectively. With decreasing Ni/Zn atomic ratio from 7 to 2, the CH4 and CO2 conversions on NixZn/MgAl first increase and then decrease, and Ni5Zn/MgAl has the highest activity with the CH4 and CO2 conversions of 81% and 87%, respectively. During the time on stream of 100 h at 800 °C, Ni5Zn/MgAl exhibits better stability than Ni/MgAl, mainly ascribed to its less amount of filamentous graphite carbon. In all, the formation of Ni–Zn alloy enhances the catalyst activity and remarkably suppresses the graphitization of carbonaceous deposit.