| Literature DB >> 28067307 |
Saravanan Govindaraju1, Seshadri Reddy Ankireddy2, Buddolla Viswanath1, Jongsung Kim2, Kyusik Yun1.
Abstract
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Year: 2017 PMID: 28067307 PMCID: PMC5220289 DOI: 10.1038/srep40298
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic representation of overall reaction scheme for synthesis of BSA-Au NCs.
Figure 2Morphology of BSA-Au NCs (a) TEM image, inset image illustrates the average particle size distribution, (b) HTEM lattice spacing between faces and (c) selected area diffraction SAED pattern of BSA-Au NCs.
Figure 3The total SurveyX-Ray photoelectron spectra of as-prepared BSA-Au NCs, (a) full range XPS spectrum of C1s, N1s, O1s and Na1s of BSA-Au NCs, individual high resolution XPS spectra of (b) Au 4 f, (c) C1s, (d) N1s and (e) (O1s).
Figure 4XRD spectrum for BSA-Au NCs.
Figure 5The FTIR spectrum of (a) BSA-Au NCs and (b) BSA.
Figure 6UV-vis and PL intensity absorbance of BSA-Au NCs in PBS buffer and inset image shows the (a) BSA and (b) BSA-Au NCs under UV illumination.
Figure 7The PL response and stability of BSA-Au NCs as a function of (a) pH and (b) different time intervals.
Figure 8The PL emission spectra of BSA-Au NCs by the addition of various concentrations of DA (λex = 450 nm).
Inset image shows the dependence of the F/F value on the concentration of DA within the range of 0 to10 nM. Inset figure explains the linear relationship between the F/F value and the concentration of DA within the range of 0 to 10 nM and results were showing a linear fit to the Stern-Volmer equation. The experiment was repeated three times and data was expressed as the mean ± standard deviation.
Detection performance of different fluorescent sensors for detection of dopamine.
| Material | Technique | Limit of detection | Reference |
|---|---|---|---|
| Mesoporous nitrogen carbon materials | Electrochemical sensor | 0.001 μM | |
| d-DNA copper nanoparticles | Fluorescent sensor | 20 pM | |
| Nanoporous AuAg alloy | Electrochemical sensor | 0.2 μM | |
| Carbon dots and nano-graphite | Fluorescent sensor | 0.055 nm | |
| Carbon nanopipette | Electrochemical sensor | 25 ± 5 nM | |
| Gold nanoparticles | Colorimetric sensor | 33 nM | |
| Poly(tetrafluoroethylene) | Self-powered triboelectric nanosensors | 0.5 μM | |
| NH2–graphene | Electrochemiluminescence sensor | 0.04 μM | |
| CdSe quantum dots | Electrochemiluminescence sensor | 0.5 μM | |
| Pd/Bacterial Cellulose Hybrid Nanofibers | Electrochemical biosensor | 1.26 μM | |
Figure 9PL spectra of BSA-Au NCs in the presence of different concentrations of spiked DA ranging from 1 to 6 nM and the corresponding response of normalized fluorescence intensity versus concentration of spiked DA.
The inset figure displays corresponding response of normalized fluorescence intensity of BSA-Au NCs (F0/F) versus concentration of spiked DA(F0 and F) represent the PL intensity in the absence and presence of DA, respectively and showing a linear fit to the Stern-Volmer equation. The experiment was repeated three times and data was expressed as the mean ± standard deviation.
Detection of DA (nM) in spiked CSF.
| Sample | Spiked | Found ± S.D | % Recovery | RSD (%) |
|---|---|---|---|---|
| 1 | 1.05 ± 0.078 | 108.42 | 6.66 | |
| 2 | 2.15 ± 0.187 | 109.28 | 8.37 | |
| 4 | 3.94 ± 0.040 | 97.82 | 1.01 | |
| 6 | 5.68 ± 0.422 | 88.12 | 7.42 |
Figure 10Comparison and selectivity of as-synthesized BSA-Au NCs for DA over the other molecules and ions.
The concentration of all ions and molecules were used at 10 nM.
Figure 11Schematic representation of fluorescence intensity quenching of BSA-Au NCs with DA and also figure shows the reaction mechanism of DA to form DQ via electrons transfers from DA to BSA-Au NCs and those electrons were donated to DQ leads fluorescence intensity quenching.
Figure 12Time resolved fluorescence decay of BSA-Au NCsin absence and presence of DA.