TY - JOUR
T1 - Methane-to-methanol conversion over zeolite Cu-SSZ-13, and its comparison with the selective catalytic reduction of NOx with NH3
AU - Oord, Ramon
AU - Schmidt, Joel E.
AU - Weckhuysen, Bert M.
PY - 2018
Y1 - 2018
N2 - The direct conversion of methane into methanol is considered as one of the holy grails in hydrocarbon chemistry and recently it was found that small pore zeolites, such as Cu-SSZ-13, Cu-SSZ-16 and Cu-SSZ-39, are active for this process. Here, we propose a reaction mechanism based on spectroscopic evidence for the methane-to-methanol reaction over Cu-SSZ-13 (Si/Al = 20). Using in situ FT-IR and operando UV-vis-NIR DRS, performed on a series of different Cu-ion-exchanged SSZ-13 zeolites, both a mono-nuclear site or a dimeric copper active site are consistent with the observations of this study. These proposed active site(s) are characterized by a [small nu]OH at [similar]3654 cm-1 and a charge transfer (CT) transition at [similar]29 000 cm-1. We have further evidence to complete the full catalytic cycle to methanol, including the formation of the reaction intermediate Cu(CH3)(H2O), which is characterized by overtone transitions, i.e., a 2[small nu]CH at [similar]4200 cm-1 and a 2[small nu]OH at [similar]5248 cm-1. We found that increasing the pre-oxidation temperature from 450 [degree]C to 550 [degree]C resulted in a 15% increase in methanol production, as well as a concomitant increase of the 29 000 cm-1 CT transition. Furthermore, Cu-exchanged SSZ-13 zeolites, which perform well in the NH3-SCR reaction at 200 [degree]C (the low temperature regime), also show a high activity in the methane-to-methanol reaction and vice versa, leading us to believe that this material has a similar if not the same active site for both the catalytic reduction of NO and the stepwise reaction towards methanol.
AB - The direct conversion of methane into methanol is considered as one of the holy grails in hydrocarbon chemistry and recently it was found that small pore zeolites, such as Cu-SSZ-13, Cu-SSZ-16 and Cu-SSZ-39, are active for this process. Here, we propose a reaction mechanism based on spectroscopic evidence for the methane-to-methanol reaction over Cu-SSZ-13 (Si/Al = 20). Using in situ FT-IR and operando UV-vis-NIR DRS, performed on a series of different Cu-ion-exchanged SSZ-13 zeolites, both a mono-nuclear site or a dimeric copper active site are consistent with the observations of this study. These proposed active site(s) are characterized by a [small nu]OH at [similar]3654 cm-1 and a charge transfer (CT) transition at [similar]29 000 cm-1. We have further evidence to complete the full catalytic cycle to methanol, including the formation of the reaction intermediate Cu(CH3)(H2O), which is characterized by overtone transitions, i.e., a 2[small nu]CH at [similar]4200 cm-1 and a 2[small nu]OH at [similar]5248 cm-1. We found that increasing the pre-oxidation temperature from 450 [degree]C to 550 [degree]C resulted in a 15% increase in methanol production, as well as a concomitant increase of the 29 000 cm-1 CT transition. Furthermore, Cu-exchanged SSZ-13 zeolites, which perform well in the NH3-SCR reaction at 200 [degree]C (the low temperature regime), also show a high activity in the methane-to-methanol reaction and vice versa, leading us to believe that this material has a similar if not the same active site for both the catalytic reduction of NO and the stepwise reaction towards methanol.
U2 - 10.1039/C7CY02461D
DO - 10.1039/C7CY02461D
M3 - Article
SN - 2044-4753
VL - 8
SP - 1028
EP - 1038
JO - Catalysis Science & Technology
JF - Catalysis Science & Technology
IS - 4
ER -