Assessing the combined effect of gamma radiation and sulfate-reducing bacteria on copper corrosion for deep nuclear waste storage

Ensuring the integrity of containment barriers in geological disposal facilities (GDFs) is crucial for the long-term storage of radioactive waste. Copper is considered as a promising canister material due to its corrosion resistance. This study examines the combined effects of external gamma radiati...

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Vydané v:Corrosion science Ročník 258; s. 113443
Hlavní autori: Morales-Hidalgo, Mar, Povedano-Priego, Cristina, Martinez-Moreno, Marcos F., Mumford, Adam D., Černá, Kateřina, Ju-Nam, Yon, Ojeda, Jesus J., Fernández, Ana María, Alonso, Ursula, Jroundi, Fadwa, Merroun, Mohamed L.
Médium: Journal Article
Jazyk:English
Vydavateľské údaje: Elsevier Ltd 01.01.2026
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ISSN:0010-938X
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Abstract Ensuring the integrity of containment barriers in geological disposal facilities (GDFs) is crucial for the long-term storage of radioactive waste. Copper is considered as a promising canister material due to its corrosion resistance. This study examines the combined effects of external gamma radiation (14 and 28 kGy) and sulfate-reducing bacteria (SRB) on copper corrosion in highly compacted FEBEX bentonite. Results showed that gamma radiation significantly reduces SRB viability, suggesting that these bacteria are likely to remain inactive during the early centuries of GDF operation, when radiation is at its highest level. Microscopic and spectroscopic analyses identified copper oxides, particularly CuO, as the main corrosion products. Gamma radiation was found to delay microbially influenced corrosion by altering the microbial community structure and promoting salt precipitation, including copper sulfates. SRB facilitated the formation of biogenic copper sulfides on unirradiated samples or those minimally affected by radiation. These findings provide valuable insights into the role of SRB in copper corrosion, broadening the understanding of long-term GDF safety. [Display omitted] •Gamma radiation reduces SRB viability, delaying copper biocorrosion.•Copper oxides were the main corrosion products in all bentonite-treated blocks.•SRB-driven biogenic copper sulfides appeared in unirradiated treatments.•XPS revealed abiotic CuxS formation in Cu exposed to highest radiation dose (28 kGy).
AbstractList Ensuring the integrity of containment barriers in geological disposal facilities (GDFs) is crucial for the long-term storage of radioactive waste. Copper is considered as a promising canister material due to its corrosion resistance. This study examines the combined effects of external gamma radiation (14 and 28 kGy) and sulfate-reducing bacteria (SRB) on copper corrosion in highly compacted FEBEX bentonite. Results showed that gamma radiation significantly reduces SRB viability, suggesting that these bacteria are likely to remain inactive during the early centuries of GDF operation, when radiation is at its highest level. Microscopic and spectroscopic analyses identified copper oxides, particularly CuO, as the main corrosion products. Gamma radiation was found to delay microbially influenced corrosion by altering the microbial community structure and promoting salt precipitation, including copper sulfates. SRB facilitated the formation of biogenic copper sulfides on unirradiated samples or those minimally affected by radiation. These findings provide valuable insights into the role of SRB in copper corrosion, broadening the understanding of long-term GDF safety. [Display omitted] •Gamma radiation reduces SRB viability, delaying copper biocorrosion.•Copper oxides were the main corrosion products in all bentonite-treated blocks.•SRB-driven biogenic copper sulfides appeared in unirradiated treatments.•XPS revealed abiotic CuxS formation in Cu exposed to highest radiation dose (28 kGy).
ArticleNumber 113443
Author Alonso, Ursula
Mumford, Adam D.
Ju-Nam, Yon
Morales-Hidalgo, Mar
Povedano-Priego, Cristina
Jroundi, Fadwa
Fernández, Ana María
Ojeda, Jesus J.
Martinez-Moreno, Marcos F.
Černá, Kateřina
Merroun, Mohamed L.
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  givenname: Marcos F.
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  surname: Martinez-Moreno
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  surname: Černá
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  organization: Technical University of Liberec, Institute for Nanomaterials, Advanced Technologies and Innovations, Liberec, Czech Republic
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  givenname: Yon
  orcidid: 0000-0003-2972-8073
  surname: Ju-Nam
  fullname: Ju-Nam, Yon
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  givenname: Jesus J.
  surname: Ojeda
  fullname: Ojeda, Jesus J.
  organization: Department of Chemical Engineering, Faculty of Science and Engineering, Swansea University, Swansea, United Kingdom
– sequence: 8
  givenname: Ana María
  surname: Fernández
  fullname: Fernández, Ana María
  organization: Departamento de Fisión Nuclear, CIEMAT, Avenida Complutense, 40, Madrid 28040, Spain
– sequence: 9
  givenname: Ursula
  orcidid: 0000-0002-2668-4725
  surname: Alonso
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  givenname: Fadwa
  surname: Jroundi
  fullname: Jroundi, Fadwa
  organization: Department of Microbiology, Faculty of Sciences, University of Granada, Granada, Spain
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  givenname: Mohamed L.
  orcidid: 0000-0003-4553-5976
  surname: Merroun
  fullname: Merroun, Mohamed L.
  organization: Department of Microbiology, Faculty of Sciences, University of Granada, Granada, Spain
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Keywords Deep geological repository
Microbial activity
Nuclear waste repository
Spectroscopic characterization
Geological disposal facility
Microbially influenced corrosion
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Snippet Ensuring the integrity of containment barriers in geological disposal facilities (GDFs) is crucial for the long-term storage of radioactive waste. Copper is...
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StartPage 113443
SubjectTerms Deep geological repository
Geological disposal facility
Microbial activity
Microbially influenced corrosion
Nuclear waste repository
Spectroscopic characterization
Title Assessing the combined effect of gamma radiation and sulfate-reducing bacteria on copper corrosion for deep nuclear waste storage
URI https://dx.doi.org/10.1016/j.corsci.2025.113443
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