Semantic Scholar Open Access 2024 27 sitasi

Atomically Resolved Transition Pathways of Iron Redox.

Xiaozhi Liu Yue Pan Jianxiong Zhao Yuhan Wang Mengshu Ge +5 lainnya

Abstrak

The redox transition between iron and its oxides is of the utmost importance in heterogeneous catalysis, biological metabolism, and geological evolution. The structural characteristics of this reaction may vary based on surrounding environmental conditions, giving rise to diverse physical scenarios. In this study, we explore the atomic-scale transformation of nanosized Fe3O4 under ambient-pressure H2 gas using in-situ environmental transmission electron microscopy. Our results reveal that the internal solid-state reactions dominated by iron diffusion are coupled with the surface reactions involving gaseous O or H species. During reduction, we observe two competitive reduction pathways, namely Fe3O4 → FeO → Fe and Fe3O4 → Fe. An intermediate phase with vacancy ordering is observed during the disproportionation reaction of Fe2+ → Fe0 + Fe3+, which potentially alleviates stress and facilitates ion migration. As the temperature decreases, an oxidation process occurs in the presence of environmental H2O and trace amounts of O2. A direct oxidation of Fe to Fe3O4 occurs in the absence of the FeO phase, likely corresponding to a change in the water vapor content in the atmosphere. This work elucidates a full dynamical scenario of iron redox under realistic conditions, which is critical for unraveling the intricate mechanisms governing the solid-solid and solid-gas reactions.

Topik & Kata Kunci

Penulis (10)

X

Xiaozhi Liu

Y

Yue Pan

J

Jianxiong Zhao

Y

Yuhan Wang

M

Mengshu Ge

L

Lixiang Qian

L

Liang Zhang

L

Lin Gu

D

Dan Zhou

D

Dong Su

Format Sitasi

Liu, X., Pan, Y., Zhao, J., Wang, Y., Ge, M., Qian, L. et al. (2024). Atomically Resolved Transition Pathways of Iron Redox.. https://doi.org/10.1021/jacs.4c05309

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Lihat di Sumber doi.org/10.1021/jacs.4c05309
Informasi Jurnal
Tahun Terbit
2024
Bahasa
en
Total Sitasi
27×
Sumber Database
Semantic Scholar
DOI
10.1021/jacs.4c05309
Akses
Open Access ✓