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Atomic Scale Mechanisms of Multimode Oxide Growth on Nickel-Chromium Alloy: Direct in Situ Observation of the Initial Oxide Nucleation and Growth

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Autore
Wang S., Dong Z., Zhang L., Tsiakaras P., Shen P.K., Luo L.
Data
2021
Language
en
DOI
10.1021/acsami.0c18158
Soggetto
Atoms
Binary alloys
Calculations
Catalysis
Chromium metallography
Corrosion
Crystallization
High resolution transmission electron microscopy
High temperature applications
Nickel alloys
Nickel metallography
Nickel oxide
Nucleation
Scale (deposits)
Atomic-scale mechanisms
Atomistic mechanism
Environmental transmission electron microscopy
First-principles calculation
In-situ observations
Kinetically controlled
Nickel-Chromium alloys
Nucleation and growth
Chromium alloys
American Chemical Society
Mostra tutti i dati dell'item
Abstract
The initial growth mode of oxide on alloy plays a decisive role in the development of protective oxide scales on metals and alloys, which is critical for their functionality for high temperature applications. However, the atomistic mechanisms dictating that the oxide growth remain elusive due to the lack of direct in situ observation of the initial oxide nucleation and growth at atomic-scale. Herein, we employed environmental transmission electron microscopy and the first-principles calculations to elucidate the initial atomic process of nickel-chromium (Ni-Cr) alloy oxidation. We directly revealed three different oxide growth modes of initial NiO islands on Ni-Cr alloy upon oxidation by O2, which result in distinct crystallography and morphology. The multimode oxide growth leads to irregular-shaped oxides, which is shown to be sensitive to the local mass transport. This localization of oxide growth mode is also demonstrated by the identified vigorous competence in oxide growth and thus shown to be kinetically controlled. The concept exemplified here provides insights into the oxide formation and has significant implications in other material and chemical processes involving oxygen gas, such as corrosion, heterogeneous catalysis, and ionic conduction. © 2020 American Chemical Society.
URI
http://hdl.handle.net/11615/80780
Collections
  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]

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