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Nitrogen-carbon-encapsulated Fe3C nanoparticles as highly efficient earth-abundant oxygen reduction electrocatalysts

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Nitrogen-carbon-encapsulated Fe3C nanoparticles as highly efficient earth-abundant oxygen reduction electrocatalysts. / Wang, C.; Li, Z.; Lei, J. et al.
In: Science China Materials, Vol. 67, No. 3, 31.03.2024, p. 762-770.

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Wang C, Li Z, Lei J, Li S, Mertens SFL, Hu J. Nitrogen-carbon-encapsulated Fe3C nanoparticles as highly efficient earth-abundant oxygen reduction electrocatalysts. Science China Materials. 2024 Mar 31;67(3):762-770. Epub 2024 Feb 4. doi: 10.1007/s40843-023-2768-3

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Wang, C. ; Li, Z. ; Lei, J. et al. / Nitrogen-carbon-encapsulated Fe3C nanoparticles as highly efficient earth-abundant oxygen reduction electrocatalysts. In: Science China Materials. 2024 ; Vol. 67, No. 3. pp. 762-770.

Bibtex

@article{120e4d56a5144551ab99a7932e3afc0c,
title = "Nitrogen-carbon-encapsulated Fe3C nanoparticles as highly efficient earth-abundant oxygen reduction electrocatalysts",
abstract = "The design and synthesis of the highly active metal-organic framework (MOF)-based catalysts open new avenues to facilitate the kinetically unfavorable oxygen reduction reaction (ORR). In this paper, we elucidate the design and fabrication of an efficient electrocatalyst with a novel structure for the enhancement of the ORR performance by decorating the surface of the ZIF-8 precursor with ferrocene formic acid, followed by a two-step carbonization process, which is critical for the encapsulation of pyrolytic Fe3C nanoparticles (NPs) into carbon nanotubes (CNTs) and the isolation of Fe single atoms onto an N-doped carbon (NC) matrix. Moreover, the relative Fe content is vital to optimize the ORR performance of the catalysts. The resulting Fe3C@CNT/NC-M catalyst has an optimized structure. It shows great long-term stability and excellent electrocatalytic ORR performance in alkaline solution, with the half-wave potential and limiting current reaching 0.941 V and 6.31 mA cm−2, respectively. Furthermore, the electrocatalyst has a strong tolerance to and good stability in a methanol solution. The Fe3C@CNT/NC-M zinc-air battery delivers a large open-circuit potential of 1.525 V, a peak power density of 348 mW cm−2 at 420 mA cm−2, and a maximum capacity of 843 mA h gZn−1 at 10 mA cm−2. Thus, this synthetic strategy provides a promising pathway toward constructing MOF-based electrocatalytic materials with effective and stable ORR performance.",
author = "C. Wang and Z. Li and J. Lei and S. Li and S.F.L. Mertens and J. Hu",
year = "2024",
month = mar,
day = "31",
doi = "10.1007/s40843-023-2768-3",
language = "English",
volume = "67",
pages = "762--770",
journal = "Science China Materials",
number = "3",

}

RIS

TY - JOUR

T1 - Nitrogen-carbon-encapsulated Fe3C nanoparticles as highly efficient earth-abundant oxygen reduction electrocatalysts

AU - Wang, C.

AU - Li, Z.

AU - Lei, J.

AU - Li, S.

AU - Mertens, S.F.L.

AU - Hu, J.

PY - 2024/3/31

Y1 - 2024/3/31

N2 - The design and synthesis of the highly active metal-organic framework (MOF)-based catalysts open new avenues to facilitate the kinetically unfavorable oxygen reduction reaction (ORR). In this paper, we elucidate the design and fabrication of an efficient electrocatalyst with a novel structure for the enhancement of the ORR performance by decorating the surface of the ZIF-8 precursor with ferrocene formic acid, followed by a two-step carbonization process, which is critical for the encapsulation of pyrolytic Fe3C nanoparticles (NPs) into carbon nanotubes (CNTs) and the isolation of Fe single atoms onto an N-doped carbon (NC) matrix. Moreover, the relative Fe content is vital to optimize the ORR performance of the catalysts. The resulting Fe3C@CNT/NC-M catalyst has an optimized structure. It shows great long-term stability and excellent electrocatalytic ORR performance in alkaline solution, with the half-wave potential and limiting current reaching 0.941 V and 6.31 mA cm−2, respectively. Furthermore, the electrocatalyst has a strong tolerance to and good stability in a methanol solution. The Fe3C@CNT/NC-M zinc-air battery delivers a large open-circuit potential of 1.525 V, a peak power density of 348 mW cm−2 at 420 mA cm−2, and a maximum capacity of 843 mA h gZn−1 at 10 mA cm−2. Thus, this synthetic strategy provides a promising pathway toward constructing MOF-based electrocatalytic materials with effective and stable ORR performance.

AB - The design and synthesis of the highly active metal-organic framework (MOF)-based catalysts open new avenues to facilitate the kinetically unfavorable oxygen reduction reaction (ORR). In this paper, we elucidate the design and fabrication of an efficient electrocatalyst with a novel structure for the enhancement of the ORR performance by decorating the surface of the ZIF-8 precursor with ferrocene formic acid, followed by a two-step carbonization process, which is critical for the encapsulation of pyrolytic Fe3C nanoparticles (NPs) into carbon nanotubes (CNTs) and the isolation of Fe single atoms onto an N-doped carbon (NC) matrix. Moreover, the relative Fe content is vital to optimize the ORR performance of the catalysts. The resulting Fe3C@CNT/NC-M catalyst has an optimized structure. It shows great long-term stability and excellent electrocatalytic ORR performance in alkaline solution, with the half-wave potential and limiting current reaching 0.941 V and 6.31 mA cm−2, respectively. Furthermore, the electrocatalyst has a strong tolerance to and good stability in a methanol solution. The Fe3C@CNT/NC-M zinc-air battery delivers a large open-circuit potential of 1.525 V, a peak power density of 348 mW cm−2 at 420 mA cm−2, and a maximum capacity of 843 mA h gZn−1 at 10 mA cm−2. Thus, this synthetic strategy provides a promising pathway toward constructing MOF-based electrocatalytic materials with effective and stable ORR performance.

U2 - 10.1007/s40843-023-2768-3

DO - 10.1007/s40843-023-2768-3

M3 - Journal article

VL - 67

SP - 762

EP - 770

JO - Science China Materials

JF - Science China Materials

IS - 3

ER -