By means of an initial electrochemical carbon dioxide reduction reaction (eCO2RR), both the reaction current and Faradaic efficiency of the eCO2RR on boron-doped diamond (BDD) electrodes were significantly improved. Here, this effect is referred to as the self-activation of BDD. Generally, the generation of carbon dioxide radical anions (CO2•-) is the most recognized pathway leading to the formation of hydrocarbons and oxygenated products. However, the self-activation process enabled the eCO2RR to take place at a low potential, that is, a low energy, where CO2•- is hardly produced. In this work, we found that unidentate carbonate and carboxylic groups were identified as intermediates during self-activation. Increasing the amount of these intermediates via the self-activation process enhances the performance of eCO2RR. We further evaluated this effect in long-term experiments using a CO2 electrolyzer for formic acid production and found that the electrical-to-chemical energy conversion efficiency reached 50.2% after the BDD self-activation process.

Du, J., Fiorani, A., Inagaki, T., Otake, A., Murata, M., Hatanaka, M., et al. (2022). A New Pathway for CO2Reduction Relying on the Self-Activation Mechanism of Boron-Doped Diamond Cathode. JACS AU, 2(6), 1375-1382 [10.1021/jacsau.2c00081].

A New Pathway for CO2Reduction Relying on the Self-Activation Mechanism of Boron-Doped Diamond Cathode

Fiorani A.;
2022

Abstract

By means of an initial electrochemical carbon dioxide reduction reaction (eCO2RR), both the reaction current and Faradaic efficiency of the eCO2RR on boron-doped diamond (BDD) electrodes were significantly improved. Here, this effect is referred to as the self-activation of BDD. Generally, the generation of carbon dioxide radical anions (CO2•-) is the most recognized pathway leading to the formation of hydrocarbons and oxygenated products. However, the self-activation process enabled the eCO2RR to take place at a low potential, that is, a low energy, where CO2•- is hardly produced. In this work, we found that unidentate carbonate and carboxylic groups were identified as intermediates during self-activation. Increasing the amount of these intermediates via the self-activation process enhances the performance of eCO2RR. We further evaluated this effect in long-term experiments using a CO2 electrolyzer for formic acid production and found that the electrical-to-chemical energy conversion efficiency reached 50.2% after the BDD self-activation process.
2022
Du, J., Fiorani, A., Inagaki, T., Otake, A., Murata, M., Hatanaka, M., et al. (2022). A New Pathway for CO2Reduction Relying on the Self-Activation Mechanism of Boron-Doped Diamond Cathode. JACS AU, 2(6), 1375-1382 [10.1021/jacsau.2c00081].
Du, J.; Fiorani, A.; Inagaki, T.; Otake, A.; Murata, M.; Hatanaka, M.; Einaga, Y.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1030072
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