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MWCNT Localization and Electrical Percolation in Thin Films of Semifluorinated PMMA Block Copolymers
MWCNT Localization and Electrical Percolation in Thin Films of Semifluorinated PMMA Block Copolymers
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MWCNT Localization and Electrical Percolation in Thin Films of Semifluorinated PMMA Block Copolymers
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MWCNT Localization and Electrical Percolation in Thin Films of Semifluorinated PMMA Block Copolymers
MWCNT Localization and Electrical Percolation in Thin Films of Semifluorinated PMMA Block Copolymers

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MWCNT Localization and Electrical Percolation in Thin Films of Semifluorinated PMMA Block Copolymers
MWCNT Localization and Electrical Percolation in Thin Films of Semifluorinated PMMA Block Copolymers
Journal Article

MWCNT Localization and Electrical Percolation in Thin Films of Semifluorinated PMMA Block Copolymers

2025
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Overview
Diblock copolymers (BCP) consisting of poly(methyl methacrylate) (PMMA) and poly(1H,1H,2H,2H-perfluorodecyl methacrylate) (PsfMA) blocks are employed as templates for controlled dispersion and localization of multi-walled carbon nanotubes (MWCNT). Short MWCNT are modified with perfluoroalkyl groups to increase the compatibility between MWCNT and the semifluorinated (PsfMA) phase and to promote a defined arrangement of MWCNT in the BCP morphology. Thin BCP and BCP/MWCNT composite films are prepared by dip-coating using tetrahydrofuran as solvent with dispersed MWCNT. Atomic force microscopy, scanning and transmission electron microscopy reveal a strong tendency of the BCP to form micelle-like domains consisting of a PMMA shell and a semifluorinated PsfMA core, embedded in a soft phase, containing also semifluorinated blocks. MWCNT preferentially localized in the embedding phase outside the micelles. Perfluoroalkyl-modification leads to significant improvement in the dispersion of MWCNT, both in the polymer solution and the resulting nanocomposite film due to increased interaction of MWCNT with the semifluorinated side chains in the soft phase outside the micelle domains. As a result, reliable electrical conductivity is observed in contrast to films with non-modified MWCNT. Thus, well-dispersed, modified MWCNT provide a defined electrical conduction path at the micrometer level, which is interesting for applications in electronics and vapor sensing.