Cu-based bimetallic catalysts have attracted great attention for the reverse water gas shift (RWGS) reaction due to their high activity and selectivity. This work reports the application of Cu-In bimetallic catalysts for the RWGS reaction and demonstrates that the promotion effect of In on Cu is support sensitive. The Cu-In/ZrO2 catalyst exhibited significantly higher CO2 conversion than the Cu/ZrO2 catalyst, whereas the CO2 conversion over Cu-In/CeO2 was much lower than that of Cu/CeO2. The reasons of the support-dependent RWGS activity was revealed by systematic characterizations. On the ZrO2 support, Cu and In formed Cu-In alloys and promoted the activation of CO2 by the oxygen vacancies from partially reduced In2O3. On the CeO2 support,...
The hydrogenation of CO2 to CH3OH is an important reaction for future renewable energy scenarios. He...
Previously, we reported a strong Fe-Cu synergy in CO2 hydrogenation to olefin-rich C2+ hydrocarbons ...
In this work, bimetallic Cu–Ni catalysts have been studied in the water-gas shift (WGS) reaction, an...
The RWGS reaction represents a direct approach for gas-phase CO2 upgrading. This work showcases the ...
In this work, bimetallic Cu–Ni catalysts have been studied in the water-gas shift (WGS) reaction, an...
In recent decades, the world has been concerned about the environmental impact of CO2 emissions into...
The reactive metal-support interaction in the Cu-In2O3 system and its implications on the CO2 select...
Cu/CeO(2), Pd/CeO(2), and CuPd/CeO(2) catalysts were prepared and their reduction followed by in-sit...
Mo2C is an effective catalyst for chemical CO2 upgrading via reverse water-gas shift (RWGS). In this...
Mo2C is an effective catalyst for chemical CO2 upgrading via reverse water-gas shift (RWGS). In this...
The reverse water–gas shift chemical (RWGS) reaction is a promising technique of converting CO2 to C...
We have synthesized and tested a highly active Cu doped mesoporous CeO2 catalyst system for the low ...
The RWGS reaction represents a direct approach for gas-phase CO2 upgrading. This work showcases the ...
In the context of Carbon Capture and Utilisation (CCU), the catalytic reduction of CO2 to CO via rev...
The water gas shift activities of Cu on ceria and Gd doped ceria have been studied for the further e...
The hydrogenation of CO2 to CH3OH is an important reaction for future renewable energy scenarios. He...
Previously, we reported a strong Fe-Cu synergy in CO2 hydrogenation to olefin-rich C2+ hydrocarbons ...
In this work, bimetallic Cu–Ni catalysts have been studied in the water-gas shift (WGS) reaction, an...
The RWGS reaction represents a direct approach for gas-phase CO2 upgrading. This work showcases the ...
In this work, bimetallic Cu–Ni catalysts have been studied in the water-gas shift (WGS) reaction, an...
In recent decades, the world has been concerned about the environmental impact of CO2 emissions into...
The reactive metal-support interaction in the Cu-In2O3 system and its implications on the CO2 select...
Cu/CeO(2), Pd/CeO(2), and CuPd/CeO(2) catalysts were prepared and their reduction followed by in-sit...
Mo2C is an effective catalyst for chemical CO2 upgrading via reverse water-gas shift (RWGS). In this...
Mo2C is an effective catalyst for chemical CO2 upgrading via reverse water-gas shift (RWGS). In this...
The reverse water–gas shift chemical (RWGS) reaction is a promising technique of converting CO2 to C...
We have synthesized and tested a highly active Cu doped mesoporous CeO2 catalyst system for the low ...
The RWGS reaction represents a direct approach for gas-phase CO2 upgrading. This work showcases the ...
In the context of Carbon Capture and Utilisation (CCU), the catalytic reduction of CO2 to CO via rev...
The water gas shift activities of Cu on ceria and Gd doped ceria have been studied for the further e...
The hydrogenation of CO2 to CH3OH is an important reaction for future renewable energy scenarios. He...
Previously, we reported a strong Fe-Cu synergy in CO2 hydrogenation to olefin-rich C2+ hydrocarbons ...
In this work, bimetallic Cu–Ni catalysts have been studied in the water-gas shift (WGS) reaction, an...