Projects per year
Abstract
Understanding the mechanical behavior of Fe-Cr alloys under irradiation is crucial for their application in nuclear environments. This study investigates the evolution of dislocation structures and their impact on the nanoindentation response of Fe-9Cr alloys in five distinct conditions: (1) non-irradiated pristine material, (2) non-irradiated material annealed at 300 °C, (3) material irradiated with 10 MeV Fe²⁺ ions to 5 dpa at room temperature, (4) material irradiated with 10 MeV Fe²⁺ ions to 1 dpa at 300 °C, and (5) material irradiated with 10 MeV Fe²⁺ ions to 5 dpa at 300 °C. Transmission electron microscopy (TEM) analysis revealed that irradiation at RT leads to a dense distribution of dislocation loops, which act as strong obstacles to dislocation glide, significantly increasing the critical stress required for plastic deformation. In contrast, irradiation at 300 °C results in a lower density of defects in the matrix, with dislocation loops observed near pre-existing dislocation lines. This defect configuration facilitates the formation of dislocation channels, reducing overall obstruction to dislocation motion and leading to a decrease in pop-in stress compared to RT-irradiated samples. However, despite the apparent increase in dislocation mobility, Cr-decorated dislocation loops in the 300 °C-irradiated sample act as pinning sites, impeding the contribution of pre-existing dislocations to plastic deformation and necessitating the nucleation of new dislocations. Recorded mechanical properties, together with microstructural evolution, provide critical insights into the mechanical response of Fe-Cr alloys, offering valuable implications for their performance in nuclear applications.
| Original language | English |
|---|---|
| Article number | 156109 |
| Journal | Journal of Nuclear Materials |
| Volume | 616 |
| DOIs | |
| Publication status | Published - Oct 2025 |
| MoE publication type | A1 Journal article-refereed |
Funding
This work received funding from the National Science Center, Poland, through the PRELUDIUM 22 Program in the frame of grant no. 2023/49/N/ST11/01257. Parts of this research were carried out at IBC at the Helmholtz-Zentrum Dresden Rossendorf e. V. a member of the Helmholtz Association, through the implementation of the RADIATE proposal no. 22003083-ST. We want to thank Dr. S. Akhmadaliev for his assistance with the irradiation process and Dr. S. Facsko for valuable discussions. This research was also supported through the European Regional Development Fund under the program of the Foundation for Polish Science International Research Agenda PLUS, grant No. MAB PLUS/2018/8, and the initiative of the Ministry of Science and Higher Education 'Support for the activities of Centers of Excellence established in Poland under the Horizon 2020 program' under agreement No. MEiN/2023/DIR/3795. Part of this work has been made in the NOMATEN Centre of Excellence, supported by the European Commission through the European Union Horizon 2020 research and innovation program under Grant Agreement No. 857470.
Keywords
- Deformation mechanism
- Fe-9Cr model alloy
- Ion irradiation effects
- Nanoindentation
- Pop-ins
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Dive into the research topics of 'Microstructural evolution and mechanical response of ion-irradiated Fe-9Cr alloys: Insights from nanoindentation'. Together they form a unique fingerprint.Projects
- 1 Active
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NOMATEN: Centre of Excellence in Multifunctional Materials for Industrial and Medical Applications
Oksa, M. (Manager) & Simons, M. (Participant)
1/11/19 → 31/10/26
Project: EU project
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