In Situ Growth of Hierarchical Silver Sub‐Nanosheets on Zinc Nanosheets‐Based Hollow Fiber Gas‐Diffusion Electrodes for Electrochemical CO2 Reduction to CO
Article
| Article Title | In Situ Growth of Hierarchical Silver Sub‐Nanosheets on Zinc Nanosheets‐Based Hollow Fiber Gas‐Diffusion Electrodes for Electrochemical CO2 Reduction to CO |
|---|---|
| ERA Journal ID | 214173 |
| Article Category | Article |
| Authors | Chen, Guoliang, Ge, Lei, Kuang, Yizhu, Rabiee, Hesamoddin, Ma, Beibei, Dorosti, Fatereh, Nanjundan, Ashok Kumar, Zhu, Zhonghua and Wang, Hao |
| Journal Title | Small Science |
| Journal Citation | 4 (10) |
| Article Number | 2400184 |
| Number of Pages | 11 |
| Year | 2024 |
| Publisher | Wiley-VCH Verlag GmbH & Co. KGaA |
| Place of Publication | Germany |
| ISSN | 2688-4046 |
| Digital Object Identifier (DOI) | https://doi.org/10.1002/smsc.202400184 |
| Web Address (URL) | https://onlinelibrary.wiley.com/doi/10.1002/smsc.202400184 |
| Abstract | Electrochemical reduction of CO2 (CO2RR) is an effective strategy to mitigate carbon emission effects and store renewable electricity in value-added feedstocks, but it still suffers low production rate and current density. A nanostructured catalyst offers opportunities to enhance CO2RR activity by contributing numerous active sites and promoting charge transfer. Herein, a Cu hollow fiber gas diffusion electrode (HFGDE) with silver sub-nanosheets on a zinc nanosheet structure to produce CO is reported. Compared to the HFGDE only possessed zinc nanosheet structure, the as-prepared HFGDE with hierarchical sub-nano AgZn bimetal nanosheets exhibits a twice-partial current density of CO and a CO production rate at the applied potential −1.3 V (versus reversible hydrogen electrode). The unique Ag sub-nanosheets interconnected Zn nanosheets provide multiple charge transfer channels, and the synergistic effect between Ag and Zn improves the adsorption binding energy of COOH* intermediate, resulting in a lower charge transfer resistance and fast CO2RR kinetics to produce CO. This research demonstrates the high potential of nanoengineering electrocatalysts for HFGDE to achieve highly efficient CO2 reduction. |
| Keywords | CO2 ; CO; Electrochemical reduction |
| Related Output | |
| Is part of | Development of flow-through microtubular gas-diffusion electrodes for electrochemical CO2 reduction |
| Contains Sensitive Content | Does not contain sensitive content |
| ANZSRC Field of Research 2020 | 400404. Electrochemical energy storage and conversion |
| 340205. Main group metal chemistry | |
| Public Notes | This article is part of a UniSQ Thesis by publication. See Related Output. |
| Byline Affiliations | Centre for Future Materials |
| School of Engineering | |
| University of Queensland |
https://research.usq.edu.au/item/z86z9/in-situ-growth-of-hierarchical-silver-sub-nanosheets-on-zinc-nanosheets-based-hollow-fiber-gas-diffusion-electrodes-for-electrochemical-co2-reduction-to-co
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| Small Science - 2024 - Chen - In Situ Growth of Hierarchical Silver Sub‐Nanosheets on Zinc Nanosheets‐Based Hollow Fiber.pdf | ||
| License: CC BY 4.0 | ||
| File access level: Anyone | ||
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