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Energetics of hydrogen adsorption and diffusion for the main surface planes and all magnetic structures of γ-iron using density functional theory

  • In this study, we calculated the energetics of hydrogen atoms adsorbing on and diffusing into the first few layers of γ-Fe for the (100), (110) and (111) surfaces and for the non-magnetic (NM), ferromagnetic (FM), and antiferromagnetic single (AFM1) and double layer (AFMD) structures. These studies are relevant as they atomistically simulate the early stages of hydrogen embrittlement in steels. We employed density functional theory to establish adsorption sites and energies for each plane and the minimum energy pathways for diffusion through the first few layers with associated activation barriers. Adsorption energies for all cases vary between ∼3.7 and 4.4 eV, and the energy barriers to diffusion in the bulk region vary between ∼0.2 and 1.2 eV for the twelve cases, with the highest and lowest bulk diffusion barriers occurring in the NM(111) and the FM(100) case, respectively. We conclude that the texturing of steels in order to expose certain cleavage planes or magnetic structures can decrease the likelihood of hydrogen embrittlement.

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Metadaten
Author:Urslaan K. YouhanORCiD, Sven P. K. KöhlerORCiD
URN:urn:nbn:de:bsz:960-opus4-22577
DOI:https://doi.org/10.25968/opus-2257
DOI original:https://doi.org/10.1039/D1RA04999B
ISSN:2046-2069
Parent Title (English):RSC Advances
Document Type:Article
Language:English
Year of Completion:2021
Publishing Institution:Hochschule Hannover
Release Date:2022/05/18
GND Keyword:Wasserstoff; Adsorption; Diffusion; Versprödung; Stahl; Dichtefunktionalformalismus
Volume:11
Issue:46
First Page:28892
Last Page:28897
Link to catalogue:1803977140
Institutes:Fakultät II - Maschinenbau und Bioverfahrenstechnik
DDC classes:660 Technische Chemie
Licence (English):License LogoCreative Commons - CC BY - Attribution 3.0 Unported