A nitrogen-doped carbon was synthesized through the pyrolysis of the well-known metal-organic framework ZIF-8, followed by a subsequent acid treatment, and has been applied as a catalyst in the electrochemical reduction of carbon dioxide. The resulting electrode shows Faradaic efficiencies to carbon monoxide as high as ∼78%, with hydrogen being the only byproduct. The pyrolysis temperature determines the amount and the accessibility of N species in the carbon electrode, in which pyridinic-N and quaternary-N species play key roles in the selective formation of carbon monoxide.Accepted Author ManuscriptChemE/Catalysis EngineeringApplied Science
Here, we report a facile approach for synthesizing M–N–C catalysts (M = Co, Fe, Ni) at a commercial ...
Earth-abundant transition metal (Fe, Co, or Ni) and nitrogen-doped porous carbon electrocatalysts (M...
This is the final version. Available on open access from MDPI via the DOI in tis recordElectrochemic...
A nitrogen-doped carbon was synthesized through the pyrolysis of the well-known metal-organic framew...
A nitrogen-doped carbon was synthesized through the pyrolysis of the well-known metal-organic framew...
Nitrogen-doped carbon materials are promising electrocatalysts for electroreduction of CO2. However,...
The shortage and non-renewability of traditional energy sources have led to the energy crisis and ex...
Mesoporous nitrogen-doped carbon nanoparticles with atomically dispersed iron sites (named mesoNC-Fe...
Earth-abundant transition metal (Fe, Co, or Ni) and nitrogen-doped porous carbon electrocatalysts (M...
Iron-nitrogen-carbon (Fe-N-C) composite materials show considerable Faradaic efficiency for CO produ...
Iron-nitrogen-carbon (Fe-N-C) composite materials show considerable Faradaic efficiency for CO produ...
The electrochemical conversion of CO2 constitutes an interesting pathway to close the anthropogenic ...
Here, we report a facile approach for synthesizing M–N–C catalysts (M = Co, Fe, Ni) at a commercial ...
Here, we report a facile approach for synthesizing M–N–C catalysts (M = Co, Fe, Ni) at a commercial ...
Here, we report a facile approach for synthesizing M–N–C catalysts (M = Co, Fe, Ni) at a commercial ...
Here, we report a facile approach for synthesizing M–N–C catalysts (M = Co, Fe, Ni) at a commercial ...
Earth-abundant transition metal (Fe, Co, or Ni) and nitrogen-doped porous carbon electrocatalysts (M...
This is the final version. Available on open access from MDPI via the DOI in tis recordElectrochemic...
A nitrogen-doped carbon was synthesized through the pyrolysis of the well-known metal-organic framew...
A nitrogen-doped carbon was synthesized through the pyrolysis of the well-known metal-organic framew...
Nitrogen-doped carbon materials are promising electrocatalysts for electroreduction of CO2. However,...
The shortage and non-renewability of traditional energy sources have led to the energy crisis and ex...
Mesoporous nitrogen-doped carbon nanoparticles with atomically dispersed iron sites (named mesoNC-Fe...
Earth-abundant transition metal (Fe, Co, or Ni) and nitrogen-doped porous carbon electrocatalysts (M...
Iron-nitrogen-carbon (Fe-N-C) composite materials show considerable Faradaic efficiency for CO produ...
Iron-nitrogen-carbon (Fe-N-C) composite materials show considerable Faradaic efficiency for CO produ...
The electrochemical conversion of CO2 constitutes an interesting pathway to close the anthropogenic ...
Here, we report a facile approach for synthesizing M–N–C catalysts (M = Co, Fe, Ni) at a commercial ...
Here, we report a facile approach for synthesizing M–N–C catalysts (M = Co, Fe, Ni) at a commercial ...
Here, we report a facile approach for synthesizing M–N–C catalysts (M = Co, Fe, Ni) at a commercial ...
Here, we report a facile approach for synthesizing M–N–C catalysts (M = Co, Fe, Ni) at a commercial ...
Earth-abundant transition metal (Fe, Co, or Ni) and nitrogen-doped porous carbon electrocatalysts (M...
This is the final version. Available on open access from MDPI via the DOI in tis recordElectrochemic...