Acidic electroreduction CO2 to formic acid via interfacial modification of Bi nanoparticles at industrial-level current
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Springer Science and Business Media LLC
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https://link.springer.com/content/pdf/10.1007/s12274-024-6536-2.pdf
Reference53 articles.
1. Wang, H. L.; Jiao, Y. F.; Wu, B.; Wang, D.; Hu, Y. Q.; Liang, F.; Shen, C.; Knauer, A.; Ren, D.; Wang, H. G. et al. Exfoliated 2D layered and nonlayered metal phosphorous trichalcogenides nanosheets as promising electrocatalysts for CO2 reduction. Angew. Chem., Int. Ed. 2023, 62, e202217253.
2. Zhai, J. R.; Hu, Y.; Su, M. F.; Shi, J. W.; Li, H.; Qin, Y. Z.; Gao, F.; Lu, Q. Y. One-step phase separation for core-shell carbon@indium oxide@bismuth microspheres with enhanced activity for CO2 electroreduction to formate. Small 2023, 19, 2206440.
3. Takaoka, Y.; Song, J. T.; Takagaki, A.; Watanabe, M.; Ishihara, T. Bi/UiO-66-derived electrocatalysts for high CO2-to-formate conversion rate. Appl. Catal. B: Environ. 2023, 326, 122400.
4. Shi, Y. J.; Wang, Y. J.; Yu, J. Y.; Chen, Y. K.; Fang, C. Q.; Jiang, D.; Zhang, Q. H.; Gu, L.; Yu, X. W.; Li, X. et al. Superscalar phase boundaries derived multiple active sites in SnO2/Cu6Sn5/CuO for tandem electroreduction of CO2 to formic acid. Adv. Energy Mater. 2023, 13, 2203506.
5. Liu, H. Z.; Chen, Y. F.; Lee, J.; Gu, S.; Li, W. Z. Ammoniamediated CO2 capture and direct electroreduction to formate. ACS Energy Lett. 2022, 7, 4483–4489.
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