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Corrosion inhibition by aerobic biofilms on SAE 1018 steel
A. Jayaraman
, J. C. Earthman
,
T. K. Wood
Chemical Engineering
Huck Institutes of the Life Sciences
One Health Microbiome Center
Research output
:
Contribution to journal
›
Article
›
peer-review
146
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Scopus citations
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Dive into the research topics of 'Corrosion inhibition by aerobic biofilms on SAE 1018 steel'. Together they form a unique fingerprint.
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Keyphrases
Biofilm
100%
Corrosion Inhibition
100%
Aerobic Biofilm
100%
Mass Loss
50%
Escherichia Coli
50%
Microscopic Analysis
25%
In Situ
25%
Agitation
25%
Living Cells
25%
Fold Increase
25%
Metal Surface
25%
Glycocalyx
25%
Cell-free
25%
Kanamycin
25%
Corrosion
25%
Microscopic Observation
25%
Aerobic Bacteria
25%
Corrosion Rate
25%
Luria Bertani
25%
Carbon Steel
25%
Liquid Medium
25%
Facultative Anaerobes
25%
Biofilm-forming
25%
Mass Loss Measurement
25%
Protective Biofilm
25%
Metal Corrosion
25%
Confocal Laser Scanning Microscopy
25%
Uniform Corrosion
25%
Dead Cells
25%
Loss of Control
25%
Streptomyces Lividans
25%
Pseudomonas Fragi
25%
Complex Liquids
25%
Engineering
Mass Loss
100%
Sterile Medium
66%
Fold Increase
33%
Carbon Steel
33%
Corrosion Rate
33%
Free Cell
33%
Corrosion
33%
Sufficient Time
33%
Uniform Corrosion
33%
Liquid Medium
33%
Control Mass
33%
Observed Corrosion
33%
Immunology and Microbiology
Biofilm
100%
Escherichia coli
28%
Glycocalyx
14%
Anaerobe
14%
Streptomyces Lividans
14%
Pseudomonas fragi
14%
Confocal Microscopy
14%
Aerobic Bacterium
14%