Gas-phase electrocatalytic conversion of CO2 to chemicals on sputtered Cu and Cu–C catalysts electrodes
Author:
Gutiérrez Guerra, Nuria; González, Juan Antonio; Serrano Ruiz, Juan Carlos
Date:
2019Abstract:
A novel gas-phase electrocatalytic cell containing a low-temperature proton exchange membrane (PEM) was 16 developed to electrochemically convert CO2 into organic compounds. Two different Cu-based cathode catalysts (Cu 17 and Cu-C) were prepared by physical vapor deposition method (sputtering) and subsequently employed for the gas18 phase electroreduction of CO2 at different temperatures (70–90 °C). The prepared electrodes Cu and Cu-C were 19 characterized by X-ray diffraction (XRD), X-ray photoemission spectroscopy (XPS) and scanning electron 20 microscopy (SEM). As revealed, Cu is partially oxidized on the surface of the samples and the Cu and Cu-C cathodic 21 catalysts were comprised of a porous, continuous, and homogeneous film with nanocrystalline Cu with a grain size of 22 16 and 8 nm, respectively. The influence of the applied current and temperature on the electro-catalytic activity and 23 selectivity of these materials was investigated. Among the two investigated electrodes, the pure Cu catalyst film 24 showed the highest CO2 specific electrocatalytic reduction rates and higher selectivity to methanol formation 25 compared to the Cu-C electrode, which was attributed to the higher particle size of the former and lower CuO/Cu 26 ratio. The obtained results show potential interest for the possible use of electrical renewable energy for the 27 transformation of CO2 into valuable products using low metal loading Cu based electrodes (0.5 mg Cu cm−2) 28 prepared by sputtering.
A novel gas-phase electrocatalytic cell containing a low-temperature proton exchange membrane (PEM) was 16 developed to electrochemically convert CO2 into organic compounds. Two different Cu-based cathode catalysts (Cu 17 and Cu-C) were prepared by physical vapor deposition method (sputtering) and subsequently employed for the gas18 phase electroreduction of CO2 at different temperatures (70–90 °C). The prepared electrodes Cu and Cu-C were 19 characterized by X-ray diffraction (XRD), X-ray photoemission spectroscopy (XPS) and scanning electron 20 microscopy (SEM). As revealed, Cu is partially oxidized on the surface of the samples and the Cu and Cu-C cathodic 21 catalysts were comprised of a porous, continuous, and homogeneous film with nanocrystalline Cu with a grain size of 22 16 and 8 nm, respectively. The influence of the applied current and temperature on the electro-catalytic activity and 23 selectivity of these materials was investigated. Among the two investigated electrodes, the pure Cu catalyst film 24 showed the highest CO2 specific electrocatalytic reduction rates and higher selectivity to methanol formation 25 compared to the Cu-C electrode, which was attributed to the higher particle size of the former and lower CuO/Cu 26 ratio. The obtained results show potential interest for the possible use of electrical renewable energy for the 27 transformation of CO2 into valuable products using low metal loading Cu based electrodes (0.5 mg Cu cm−2) 28 prepared by sputtering.
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