4.8 Article

3-Arm star pyrene-functional PMMAs for efficient exfoliation of graphite in chloroform: fabrication of graphene-reinforced fibrous veils

Journal

NANOSCALE
Volume 11, Issue 3, Pages 915-931

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8nr06888g

Keywords

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Funding

  1. European Union (European Social Fund-ESF)
  2. Greek national funds through the research Funding Program: Deformation, Yield and Failure of Graphene and Graphene-based Nanocomposites [ERC-10]
  3. Graphene FET Flagship [604391]
  4. General Secretariat for Research and Technology (GSRT)
  5. Hellenic Foundation for Research and Innovation (HFRI) [2043]
  6. Greek Research & Technology Network (GRNET) in the National HPC facility-ARIS [pr005013]

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3-Arm PMMAs end-functionalized by pyrene were designed as dispersing/stabilizing agents for the liquid-phase exfoliation of graphite in low-boiling point solvents like chloroform. The synthetic procedure comprised ARGET ATRP controlled polymerization, click chemistry and the quaternization reaction of triazole, ensuring tailor-made, well-defined pyrene-functional star PMMAs. Among a series of different pyrenefunctional macromolecular topologies, the (PMMA-py(2))(3) proved the most efficient exfoliation agent giving relatively high graphene concentration (0.36 mg ml-1) at exceptionally low polymer/graphite mass ratio (mP/mGF = 0.003) and short sonication time (3 h). A 5-cycle iterative procedure relying on the redispersion of the sediment was developed yielding CG = 1.29 mg ml(-1) with 14.8% exfoliation yield, under the favorable conditions of 10.5 h total shear mixing/tip sonication time and overall mP/mGF ratio as low as 0.15. In parallel, all-atom molecular dynamics simulations were conducted which helped understand the mechanism by which pyrene-functional macromolecular topologies act as efficient dispersing agents of graphene. Finally the G@(PMMA-Py) 3 hybrids were well dispersed into the PMMA matrix by electrospinning to fabricate graphene-based nanocomposite fibrous veils. These graphene/polymer nanocomposites exhibited enhanced stiffness and strength by a factor of 4.4 with 1.5 wt% graphene hybrids as nanofillers.

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