4.8 Article

Semifluorinated Synergistic Nonfouling/Fouling-Release Surface

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 9, Issue 19, Pages 16517-16523

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.7b03258

Keywords

molecular brush; antifouling surfaces; nonfouling fouling-release; spin-casting

Funding

  1. National Basic Research Program of China [2015CB931900]
  2. International Science & Technology Cooperation Program of China [2014DFE40130]
  3. National Natural Science Foundation of China [21474127, 51373035]
  4. Strategic Priority Research Program of Chinese Academy of Sciences [XDB20020000]
  5. Shanghai Scientific and Technological Innovation Project [14JC1493400, 16JC1402500, 14520720100, 16520710300]

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The preparation of a fluorine-containing synergistic nonfouling/fouling-release surface, using a b-PFMA-PEO asymmetric molecular brush possessing both poly(ethylene glycol) (PEO) and poly(2,2,2-trifluoroethyl methacrylate) (PFMA) side chains densely distributed on the same repeat unit along the polymeric backbone, is reported. On the basis of the poly(Br-acrylate-alkyne) macroagent comprising two functionalities (alkynyl and 2-bromopropionate), which is prepared by reversible addition fragmentation chain transfer homopolymerization of a new trifunctional acrylate monomer of Br-acrylate-alkyne, b-PFMA PEO asymmetric molecular brushes are obtained by concurrent atom transfer radical polymerization and Cu-catalyzed azide/alkyne cycloaddition click reaction in a one-shot system. A spin cast thin film of the b-PFMA PEO asymmetric molecular brush exhibits a synergistic antifouling property, in which PEO side chains endow the surface with a nonfouling, characteristic, whereas PFMA side chains display the fouling-release functionality because of their low surface energy. Both protein adsorption and cell adhesion tests provided estimates of the antifouling activity of the asymmetric molecular brush surfaces, which was demonstrated to be influenced by the degree of polymerization of the backbone and the length of the PEO and PFMA side chains. With compositional heterogeneities, all asymmetric molecular brush surfaces show considerable antifouling performance with much less protein adsorption (at least 45% off, up to 75% off) and cell adhesion (at least 70% off, up to 90% off) in comparison with a bare surface.

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