| Literature DB >> 26459427 |
Andreas H H Mevold1, Wei-Wu Hsu2, Andri Hardiansyah3, Li-Ying Huang4, Ming-Chien Yang5, Ting-Yu Liu6, Tzu-Yi Chan7, Kuan-Syun Wang8, Yu-An Su9, Ru-Jong Jeng10, Juen-Kai Wang11,12, Yuh-Lin Wang13,14.
Abstract
In this research, graphene nanosheets were functionalized with cationic poly (diallyldimethylammonium chloride) (PDDA) and citrate-capped gold nanoparticles (AuNPs) for surface-enhanced Raman scattering (SERS) bio-detection application. AuNPs were synthesized by the traditional citrate thermal reduction method and then adsorbed onto graphene-PDDA nanohybrid sheets with electrostatic interaction. The nanohybrids were subject to characterization including X-ray diffraction (XRD), transmission electron microscopy (TEM), zeta potential, and X-ray photoelectron spectroscopy (XPS). The results showed that the diameter of AuNPs is about 15-20 nm immobilized on the graphene-PDDA sheets, and the zeta potential of various AuNPs/graphene-PDDA ratio is 7.7-38.4 mV. Furthermore, the resulting nanohybrids of AuNPs/graphene-PDDA were used for SERS detection of small molecules (adenine) and microorganisms (Staphylococcus aureus), by varying the ratios between AuNPs and graphene-PDDA. AuNPs/graphene-PDDA in the ratio of AuNPs/graphene-PDDA = 4:1 exhibited the strongest SERS signal in SERS detection of adenine and S. aureus. Thus, it is promising in the application of rapid and label-free bio-detection of bacteria or tumor cells.Entities:
Keywords: Bio-detection; Gold nanoparticles; Graphene; Surface-enhanced Raman scattering
Year: 2015 PMID: 26459427 PMCID: PMC4602022 DOI: 10.1186/s11671-015-1101-2
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1Fabrication of nanohybrids Au/graphene-PDDA
Various ratios of AuNPs to graphene-PDDA
| Graphene-PDDA (3 mg/mL) μL | HAuCl4 (0.1 mg/mL) mL | DI water μL | Au/G ( |
|---|---|---|---|
| 333 | 5 | 17 | 1/2 (Au1/G2) |
| 83 | 5 | 267 | 2/1 (Au2/G1) |
| 42 | 5 | 308 | 4/1 (Au4/G1) |
| 21 | 5 | 329 | 8/1 (Au8/G1) |
| 10.5 | 5 | 339.5 | 16/1 (Au16/G1) |
| 0 | 5 | 350 | Au |
Fig. 2TEM of various ratios of Au/graphene-PDDA: a Au1/G2, b Au2/G1, c Au4/G1, d Au8/G1, and e Au16/G1
Fig. 3X-ray diffraction of Au/graphene-PDDA
Fig. 4Zeta potential of graphene oxide, graphene-PDDA, and gold nanoparticles
Fig. 5Zeta potential of various ratios of Au/graphene-PDDA
Fig. 6XPS analysis of AuNPs and Au/graphene-PDDA
Fig. 7a SERS spectra and b integrated intensity (733 cm−1) of different ratios of Au/graphene-PDDA nanohybrids for bacteria (S. aureus) detection
Au/graphene-PDDA and their SERS intensity integral of S. aureus (integrated range of SERS intensity, 700~770 cm−1)
| Au/graphene-PDDA | SERS intensity*10−3 (integral) |
|---|---|
| 1/2 | 43.89 ± 4.64 |
| 2/1 | 48.30 ± 6.33 |
| 4/1 | 114.26 ± 14.95 |
| 8/1 | 64.39 ± 4.11 |
| 16/1 | 47.39 ± 1.90 |
| Au | 29.75 ± 3.60 |
Fig. 8a SERS spectra and b integrated intensity (733 cm−1) of different ratios of Au/graphene-PDDA nanohybrids for small molecules (adenine) detection
Au/graphene-PDDA and their SERS intensity integral of adenine (integrated range of SERS intensity, 700~770 cm−1)
| Au/graphene-PDDA | Intensity*10−3 (integral) |
|---|---|
| 1/2 | 174.76 ± 5.84 |
| 2/1 | 322.91 ± 6.87 |
| 4/1 | 593.43 ± 10.29 |
| 8/1 | 488.96 ± 13.79 |
| 16/1 | 410.37 ± 38.32 |
| Au | 177.00 ± 2.04 |