Please use this identifier to cite or link to this item:
http://hdl.handle.net/10397/112922
| DC Field | Value | Language |
|---|---|---|
| dc.contributor | Department of Applied Physics | - |
| dc.creator | Musgrave, CB | - |
| dc.creator | Su, J | - |
| dc.creator | Xiong, P | - |
| dc.creator | Song, Y | - |
| dc.creator | Huang, L | - |
| dc.creator | Liu, Y | - |
| dc.creator | Li, G | - |
| dc.creator | Zhang, Q | - |
| dc.creator | Xin, Y | - |
| dc.creator | Li, MM | - |
| dc.creator | Kwok, RTK | - |
| dc.creator | Lam, JWY | - |
| dc.creator | Tang, BZ | - |
| dc.creator | Goddard, WA | - |
| dc.creator | Ye, R | - |
| dc.date.accessioned | 2025-05-15T06:59:01Z | - |
| dc.date.available | 2025-05-15T06:59:01Z | - |
| dc.identifier.issn | 0002-7863 | - |
| dc.identifier.uri | http://hdl.handle.net/10397/112922 | - |
| dc.language.iso | en | en_US |
| dc.publisher | American Chemical Society | en_US |
| dc.rights | Copyright © 2025 American Chemical Society. This publication is licensed under CC-BY 4.0 . (https://creativecommons.org/licenses/by/4.0/) | en_US |
| dc.rights | The following publication Musgrave, C. B., III, Su, J., Xiong, P., Song, Y., Huang, L., Liu, Y., Li, G., Zhang, Q., Xin, Y., Li, M. M.-J., Kwok, R. T. K., Lam, J. W. Y., Tang, B. Z., Goddard, W. A., III, & Ye, R. (2025). Molecular Strain Accelerates Electron Transfer for Enhanced Oxygen Reduction. Journal of the American Chemical Society, 147(4), 3786-3795 is available at https://dx.doi.org/10.1021/jacs.4c16637. | en_US |
| dc.title | Molecular strain accelerates electron transfer for enhanced oxygen reduction | en_US |
| dc.type | Journal/Magazine Article | en_US |
| dc.identifier.spage | 3786 | - |
| dc.identifier.epage | 3795 | - |
| dc.identifier.volume | 147 | - |
| dc.identifier.issue | 4 | - |
| dc.identifier.doi | 10.1021/jacs.4c16637 | - |
| dcterms.abstract | Fe-N-C materials are emerging catalysts for replacing precious platinum in the oxygen reduction reaction (ORR) for renewable energy conversion. However, their potential is hindered by sluggish ORR kinetics, leading to a high overpotential and impeding efficient energy conversion. Using iron phthalocyanine (FePc) as a model catalyst, we elucidate how the local strain can enhance the ORR performance of Fe-N-Cs. We use density functional theory to predict the reaction mechanism for the four-electron reduction of oxygen to water. Several key differences between the reaction mechanisms for curved and flat FePc suggest that molecular strain accelerates the reductive desorption of *OH by decreasing the energy barrier by ∼60 meV. Our theoretical predictions are substantiated by experimental validation; we find that strained FePc on single-walled carbon nanotubes attains a half-wave potential (E1/2) of 0.952 V versus the reversible hydrogen electrode and a Tafel slope of 35.7 mV dec-1, which is competitive with the best-reported Fe-N-C values. We also observe a 70 mV change in E1/2 and dramatically different Tafel slopes for the flat and curved configurations, which agree well with the calculated energies. When integrated into a zinc-air battery, our device affords a maximum power density of 350.6 mW cm-2 and a mass activity of 810 mAh gZn-1 at 10 mA cm-2. Our results indicate that molecular strain provides a compelling tool for modulating the ORR activities of Fe-N-C materials. | - |
| dcterms.accessRights | open access | en_US |
| dcterms.bibliographicCitation | Journal of the American Chemical Society, 2024, v. 147, no. 4, p. 3786-3795 | - |
| dcterms.isPartOf | Journal of the American Chemical Society | - |
| dcterms.issued | 2025 | - |
| dc.identifier.scopus | 2-s2.0-85215367139 | - |
| dc.identifier.eissn | 1520-5126 | - |
| dc.description.validate | 202505 bcrc | - |
| dc.description.oa | Version of Record | en_US |
| dc.identifier.FolderNumber | OA_Scopus/WOS | en_US |
| dc.description.fundingSource | RGC | en_US |
| dc.description.fundingSource | Others | en_US |
| dc.description.fundingText | Guangdong Basic and Applied Basic Research Fund; State Key Laboratory of Marine Pollution; Shenzhen Science and Technology Program; Hong Kong Quantum AI Lab, AIR@InnoHK of Hong Kong Government; US NSF (CBET 2311117); Shenzhen Key Laboratory of Functional Aggregate Materials; Science Technology Innovation Commission of Shenzhen Municipality | en_US |
| dc.description.pubStatus | Published | en_US |
| dc.description.oaCategory | CC | en_US |
| Appears in Collections: | Journal/Magazine Article | |
Files in This Item:
| File | Description | Size | Format | |
|---|---|---|---|---|
| Musgrave_Molecular_Strain.pdf | 5.93 MB | Adobe PDF | View/Open |
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