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Tytuł pozycji:

UV/ozone-oxidized large-scale graphene platform with large chemical enhancement in surface-enhanced Raman scattering.

Tytuł:
UV/ozone-oxidized large-scale graphene platform with large chemical enhancement in surface-enhanced Raman scattering.
Autorzy:
Huh S; Department of Chemistry, Seoul National University, Seoul 151-742, Korea.
Park J
Kim YS
Kim KS
Hong BH
Nam JM
Źródło:
ACS nano [ACS Nano] 2011 Dec 27; Vol. 5 (12), pp. 9799-806. Date of Electronic Publication: 2011 Nov 16.
Typ publikacji:
Journal Article; Research Support, Non-U.S. Gov't
Język:
English
Imprint Name(s):
Original Publication: Washington D.C. : American Chemical Society
MeSH Terms:
Graphite/*chemistry
Nanostructures/*chemistry
Nanostructures/*ultrastructure
Ozone/*chemistry
Surface Plasmon Resonance/*methods
Light ; Materials Testing ; Oxidation-Reduction ; Particle Size ; Scattering, Radiation ; Surface Properties ; Ultraviolet Rays
Substance Nomenclature:
66H7ZZK23N (Ozone)
7782-42-5 (Graphite)
Entry Date(s):
Date Created: 20111111 Date Completed: 20120417 Latest Revision: 20131121
Update Code:
20240104
DOI:
10.1021/nn204156n
PMID:
22070659
Czasopismo naukowe
We fabricated a highly oxidized large-scale graphene platform using chemical vapor deposition (CVD) and UV/ozone-based oxidation methods. This platform offers a large-scale surface-enhanced Raman scattering (SERS) substrate with large chemical enhancement in SERS and reproducible SERS signals over a centimeter-scale graphene surface. After UV-induced ozone generation, ozone molecules were reacted with graphene to produce oxygen-containing groups on graphene and induced the p-type doping of the graphene. These modifications introduced the structural disorder and defects on the graphene surface and resulted in a large chemical mechanism-based signal enhancement from Raman dye molecules [rhodamine B (RhB), rhodamine 6G (R6G), and crystal violet (CV) in this case] on graphene. Importantly, the enhancement factors were increased from ∼10(3) before ozone treatment to ∼10(4), which is the largest chemical enhancement factor ever on graphene, after 5 min ozone treatment due to both high oxidation and p-doping effects on graphene surface. Over a centimeter-scale area of this UV/ozone-oxidized graphene substrate, strong SERS signals were repeatedly and reproducibly detected. In a UV/ozone-based micropattern, UV/ozone-treated areas were highly Raman-active while nontreated areas displayed very weak Raman signals.

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