Three-dimension in-situ nitrogen doping porous cellulosic biomass-based carbon aerogel for electrocatalytic CO2 reduction
As components of biomass, cellulose has great utilization value. In this study, the three-dimensional interconnected porous structure of carbon aerogel was easily prepared from cellulose on the electrocatalytic reduction reaction of CO2 (CO2RR). However, carbon materials have fewer active sites resu...
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Veröffentlicht in: | Fuel processing technology 2023-04, Vol.242, p.107612, Article 107612 |
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Sprache: | eng |
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Zusammenfassung: | As components of biomass, cellulose has great utilization value. In this study, the three-dimensional interconnected porous structure of carbon aerogel was easily prepared from cellulose on the electrocatalytic reduction reaction of CO2 (CO2RR). However, carbon materials have fewer active sites resulting in poor catalytic activity. Therefore, in order to improve the conductivity and active sites of carbon materials, melamine as nitrogen source was added into carbon aerogel by in-situ synthesis method to prepare nitrogen uniform distribution catalyst at different pyrolysis temperature. Results showed that with the increase of pyrolysis temperature, abundant pore structures were gradually formed from inside to outside, which provided enough transport channels for CO2 and products. N3–750 had the maximum CO faradaic efficiency (FE) of 75.90% due to the largest surface area of 1038.02 m2/g and the highest surface N/C ratio of 5.15%. Meanwhile, the high content of pyridinic N provided sufficient active sites on forming the *COOH intermediate rather than the pyrrolic N. Furthermore, after eight hours of reaction, the FE of CO changed from 75.90% to 68.26%, indicating good stability. Therefore, nitrogen-doped cellulosic biomass-based carbon aerogel has the potential to become a stable and efficient CO2RR catalyst.
•A three-dimension N doping porous carbon aerogel prepared from biomass component.•The specific surface area of N3–750 can reach 1038.02m2/g.•The faradaic efficiency of N3–750 can maintain about 70% for 8 h.•The pyridinic N can improve the selectivity of CO rather than the pyrrolic N. |
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ISSN: | 0378-3820 1873-7188 |
DOI: | 10.1016/j.fuproc.2022.107612 |