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  5. Effect of thermal oxidation on helium implanted 316L stainless steel

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Article
en
2022

Effect of thermal oxidation on helium implanted 316L stainless steel

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en
2022
Vol 132 (18)
Vol. 132
DOI: 10.1063/5.0122487

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Digby D Macdonald
Digby D Macdonald

University of California, Berkeley

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Min-Sung Hong
Angelica Lopez Morales
Ho Lun Chan
+7 more

Abstract

The effect of thermal oxide layer on He implanted 316L stainless steel was studied to evaluate experimentally how thermal oxidation affects the diffusion and distribution of He in the material. In the case of thermal oxidation of a He implanted sample, with an increase in oxidation time, the max swelling height increases logarithmically as a function of time and finally saturates for all samples except for the lowest dose of implanted He. Concerning TEM results, two void regions are identified. Similar to the calculation, the total irradiated depth was around 250 nm and the large void region was formed around 100–150 nm depth. On the other hand, the small void region was observed immediately under oxide layer from the thermal oxidation. In contrast, there were no voids in the altered zone near the metal/oxide interface in the non-thermal oxidized/He implanted sample. This description of the phenomena was justified using the Kirkendall effect and the Point Defect Model.

How to cite this publication

Min-Sung Hong, Angelica Lopez Morales, Ho Lun Chan, Digby D Macdonald, M. Balooch, Yujun Xie, Elena Romanovskaia, John R. Scully, Djamel Kaoumi, Peter Hosemann (2022). Effect of thermal oxidation on helium implanted 316L stainless steel. , 132(18), DOI: https://doi.org/10.1063/5.0122487.

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Publication Details

Type

Article

Year

2022

Authors

10

Datasets

0

Total Files

0

Language

en

DOI

https://doi.org/10.1063/5.0122487

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