Crossref journal-article
Royal Society of Chemistry (RSC)
Faraday Discussions (292)
Abstract

The long-term failure of seemingly intact corrosion resistant organic coatings is thought to occur via the development of ionic transport channels, which spontaneously evolve from hydrophilic regions on immersion, i.e., as a result of localized water uptake. To this end, we investigate water uptake characteristics for industrial epoxy–phenolic can coatings after immersion in deionized water and drying. Moisture sorption and the changing nature of polymer–water interactions are assessed using FTIR for dry and pre-soaked films. More water is found to be absorbed by the pre-soaked coatings on exposure to a humid environment, with a greater degree of hydrogen-bonding between the polymer and water. Furthermore, morphological changes are then correlated to localized water uptake using the AFM-IR technique. Nanoscale softened regions develop on soaking, and these are found to absorb a greater proportion of water from a humid environment.

Bibliography

Morsch, S., Lyon, S., Greensmith, P., Smith, S. D., & Gibbon, S. R. (2015). Mapping water uptake in organic coatings using AFM-IR. Faraday Discussions, 180, 527–542.

Authors 5
  1. S. Morsch (first)
  2. S. Lyon (additional)
  3. P. Greensmith (additional)
  4. S. D. Smith (additional)
  5. S. R. Gibbon (additional)
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Dates
Type When
Created 10 years, 4 months ago (April 23, 2015, 8:30 a.m.)
Deposited 1 year, 4 months ago (April 17, 2024, 1:49 p.m.)
Indexed 1 month ago (July 27, 2025, 3:24 a.m.)
Issued 10 years, 8 months ago (Jan. 1, 2015)
Published 10 years, 8 months ago (Jan. 1, 2015)
Published Online 10 years, 8 months ago (Jan. 1, 2015)
Funders 0

None

@article{Morsch_2015, title={Mapping water uptake in organic coatings using AFM-IR}, volume={180}, ISSN={1364-5498}, url={http://dx.doi.org/10.1039/c4fd00229f}, DOI={10.1039/c4fd00229f}, journal={Faraday Discussions}, publisher={Royal Society of Chemistry (RSC)}, author={Morsch, S. and Lyon, S. and Greensmith, P. and Smith, S. D. and Gibbon, S. R.}, year={2015}, pages={527–542} }