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Zwitterionic Hydrogel Coating with Antisediment Properties for Marine Antifouling Applications.
Song, Boyi; Zhang, Ershuai; Shi, Yuanjie; Wang, Wei; Zhu, Hui; Gallagher, Sheu-Jane; Fischer, Stephen; Rigney, Jennifer; Kim, Edward; Cao, Zhiqiang.
Afiliação
  • Song B; Department of Chemical Engineering and Materials Science, College of Engineering, Wayne State University, Detroit, Michigan 48202, United States.
  • Zhang E; Department of Chemical Engineering and Materials Science, College of Engineering, Wayne State University, Detroit, Michigan 48202, United States.
  • Shi Y; Department of Chemical Engineering and Materials Science, College of Engineering, Wayne State University, Detroit, Michigan 48202, United States.
  • Wang W; Department of Chemical Engineering and Materials Science, College of Engineering, Wayne State University, Detroit, Michigan 48202, United States.
  • Zhu H; Department of Chemical Engineering and Materials Science, College of Engineering, Wayne State University, Detroit, Michigan 48202, United States.
  • Gallagher SJ; Repela Tech, LLC, 46701 Commerce Center Drive, Plymouth, Michigan 48170, United States.
  • Fischer S; Repela Tech, LLC, 46701 Commerce Center Drive, Plymouth, Michigan 48170, United States.
  • Rigney J; Repela Tech, LLC, 46701 Commerce Center Drive, Plymouth, Michigan 48170, United States.
  • Kim E; Repela Tech, LLC, 46701 Commerce Center Drive, Plymouth, Michigan 48170, United States.
  • Cao Z; Department of Chemical Engineering and Materials Science, College of Engineering, Wayne State University, Detroit, Michigan 48202, United States.
ACS Appl Mater Interfaces ; 16(21): 27908-27916, 2024 May 29.
Article em En | MEDLINE | ID: mdl-38752559
ABSTRACT
Biofouling is a serious issue affecting the marine industry because the attached micro- and macrocontaminants can increase fuel consumption and damage ship hulls. A hydrophilic hydrogel-based coating is considered a promising antifouling material because it is environmentally friendly and the dense hydration layer can protect the substrate from microbial attachment. However, sediment adsorption can be an issue for hydrogel-based coatings. Their natural soft and porous structures can trap sediment from the marine environment and weaken the antifouling capability. There is still little research on the antisediment properties of hydrogels, and none of them deal with this problem. Here, we report on optimizing zwitterionic hydrogel-based coatings to improve their antisediment properties and achieve comparable performance to commercial biocidal coatings, which are the gold standard in the antifouling coating area. After 1 week of sediment contamination and 2 weeks of diatom coculturing, this optimized zwitterionic hydrogel coating maintained its antifouling properties with a few diatoms on the surface. Its large-scale samples also achieved antifouling performance similar to that of biocidal coatings in the Atlantic Ocean for 1.5 months. More importantly, our research provides a universal strategy to improve the antisediment properties of soft hydrogel-based coatings. For the first time, we report that the introduction of interfacial electrostatic interactions enhanced the antisediment properties of hydrogels.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article