Functionalization of any substrate using covalently modified large area CVD graphene.
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Summary
CVD grown graphene is electrochemically functionalized with p-(N-maleimido)phenyl residues and consecutively transferred to various substrates and the transfer process is shown to be without noticeable loss.
- Type
- article
- Published
- 2017-08-17
- Cited by
- 6
- References
- 23
- OpenAlex
- https://openalex.org/W2734111512
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:206064857
Keywords
Surface modification, Graphene, Inert, Substrate (aquarium), Covalent bond
References
- Aryl diazonium salts : new coupling agents in polymer and surface science
- Quantifying the electrochemical maleimidation of large area graphene
- Understanding and optimising the packing density of perylene bisimide layers on CVD-grown graphene.
- The Covalent Functionalization of Graphene on Substrates.
- Noncovalently functionalized monolayer graphene for sensitivity enhancement of surface plasmon resonance immunosensors.
- Maleimide functionalized silicon surfaces for biosensing investigated by in-situ IRSE and EQCM
- Maleimide-activated aryl diazonium salts for electrode surface functionalization with biological and redox-active molecules.
- Graphene electrochemistry: an overview of potential applications.
- Phenyl layers on H/Si(111) by electrochemical reduction of diazonium salts: monolayer versus multilayer formation
- Functionalized CVD monolayer graphene for label-free impedimetric biosensing
- Strain relaxation in graphene grown by chemical vapor deposition
- Surface-Enhanced Infrared Absorption: Infrared Ellipsometry of Au Evaporated Ultrathin Organic Films
- Selective chemical modification of graphene surfaces: distinction between single- and bilayer graphene.
- A new strategy for the preparation of maleimide-functionalised gold surfaces
- The optical constants of metallic island films as used for surface enhanced infrared absorption
- Resonance enhanced AFM-IR: a new powerful way to characterize blooming on polymers used in medical devices.
- Large-Area Synthesis of High-Quality and Uniform Graphene Films on Copper Foils
- Characterization, direct electrochemistry, and amperometric biosensing of graphene by noncovalent functionalization with picket-fence porphyrin.
- Optical constants of graphene measured by spectroscopic ellipsometry
- On-surface derivatisation of aromatic molecules on graphene: the importance of packing density.
Cited by
- Polarization-Dependent Atomic Force Microscopy–Infrared Spectroscopy (AFM-IR): Infrared Nanopolarimetric Analysis of Structure and Anisotropy of Thin Films and Surfaces
- In-situ carboxylation of graphene by chemical vapor deposition growth for biosensing
- Non-covalent modification of glassy carbon electrode with isoorientin and application to alpha-fetoprotein detection by fabricating an immunosensor
- Real-time detection of hepatitis B surface antigen using a hybrid graphene-gold nanoparticle biosensor
- Sensing and structure analysis by in situ IR spectroscopy: from mL flow cells to microfluidic applications
- Polymer nanocomposites with aligned two-dimensional materials
- pH sensitivity of edge-gated graphene field-effect devices with covalent edge-functionalization
- pH sensitivity of edge-gated graphene field-effect devices with covalent edge-functionalization
- The Covalent Functionalization of Surface‐Supported Graphene: An Update
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