| Literature DB >> 27374974 |
Yanqiu Jing1, Xiuxiu Yuan1, Qiu Yuan2, Kuanxin He3, Yingjie Liu4, Ping Lu5, Huaiqi Li5, Bin Li4, Hui Zhan6, Guangliang Li4.
Abstract
Polydopamine functionalized reduced graphene oxide-gold nanoparticle (PDA-RGO/Au) nanocomposites were successfully prepared by a simple and mild procedure. The PDA-RGO/Au nanocomposite is successfully formed in an aqueous buffer solution (pH 8.5) without using any reducing agent. FTIR confirmed the successful coating of PDA and informed the reduction of the surface functional groups of GO. The formation of reduced GO and Au NPs was further evidenced by UV-Vis and X-ray diffraction spectroscopy. This method is environmentally friendly and highly beneficial for the mass production of graphene-noble metal based nanocomposite. The as prepared PDA-RGO/Au nanocomposite could greatly enhance the electrochemical oxidation of nicotine. We fabricated an electrochemical nicotine sensor based on the prepared PDA-RGO/Au nanocomposite. The proposed nicotine sensor showed a wide detection range from 0.05 to 500 μM with a low detection limit of 0.015 μM. Moreover, the proposed nicotine sensor was also successfully applied for determination nicotine content in tobacco products.Entities:
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Year: 2016 PMID: 27374974 PMCID: PMC4931682 DOI: 10.1038/srep29230
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(A) FTIR spectra of GO and PDA-RGO. (B) UV-vis spectra of GO, PDA-RGO and PDA-RGO/Au nanocomposite. (C) XPS Au 4f narrow scan of PDA-RGO/Au nanocomposite.
Figure 2XRD pattern of the GO, RGO and PDA-RGO/Au nanocomposite.
Figure 3SEM images of (A) GO and (B) PDA-RGO/Au nanocomposite. (C) Particle size distribution of Au NPs.
Figure 4(A) Cyclic voltammograms of bare GCE, PDA-RGO/GCE, PDA-RGO/Au/GCE in 20 mM Fe(CN)63−/4− with 0.2 M KCl. (B) Nyquist diagrams of bare GCE, PDA-RGO/GCE and PDA-RGO/Au/GCE in 2 mM K4[Fe(CN)6] + 0.2 M KCl.
Figure 5Chemical structure of (A) nicotine and (B) cotinine. (C) Cyclic voltammograms of bare GCE, PDA-RGO/GCE and PDA-RGO/Au/GCE toward 50 μM nicotine in BR (pH = 7.5) with scan rate of 50 mV/s. Inset: PDA-RGO/Au/GCE scan in BR without nicotine. (D) Cyclic voltammograms of 50 μM nicotine at PDA-RGO/Au/GCE in BR pH 5.0–8.5 at scan rate of 50 mV/s.
Figure 6Effect of solution pH on the oxidation potential and peak current of 50 μM nicotine at the PDA-RGO/Au/GCE.
Figure 7(A) Amperometric response of the PDA-RGO/Au/GCE with successive additions of nicotine. Measured at 0.93 V. Inset: Plots of nicotine concentration and current response. (B) Amperometric current response of PDA-RGO/Au/GCE to the addition of 50 μM nicotine (a) 1 mM cotinine (b) 1 mM ascorbic acid (c) 1 mM uric acid (d) 1 mM dopamine (e) 1 mM H2O2 (f) and 50 μM nicotine (g) at an operating potential of 0.93 V.
Comparison of the PDA-RGO/Au/GCE electrochemical sensor and reported nicotine sensors.
| Electrode | Linear range (μM) | LOD (μM) | Reference |
|---|---|---|---|
| MWCNT | 31–220 | 7.6 | |
| Carbon paste | 50–500 | 6.1 | |
| Boron-doped diamond electrode | 9.9–170 | 6.1 | |
| Pencil graphite electrode | 7–107.5 | 2 | |
| Electrochemically activated GCE | 1–200 | 0.7 | |
| Molecularly imprinted TiO2-modified electrodes | 0–5000 | 4.9 | |
| CuNPs | 1–90 | 0.164 | |
| Poly(4-Amino-3-Hydroxynaphthalene Sulfonic Acid) | 1–200 | 0.866 | |
| MWCNT–alumina-coated silica | 5–400 | 1.42 | |
| PDA-RGO/Au | 0.05–500 | 0.015 | This work |
Determination of nicotine content in two brands of cigarettes and pharmaceuticals using PDDA-RGO/Au/GCE.
| Sample | Addition (μM) | Found (μM) | RSD (%) | Recovery (%) | RP-HPLC | RSD (%) |
|---|---|---|---|---|---|---|
| Cigarette 1 | 0 | 10.11 | 3.14 | — | 10.04 | 3.22 |
| 20 | 30.17 | 4.29 | 100.20 | 29.54 | 1.05 | |
| 50 | 61.01 | 0.89 | 101.50 | 60.15 | 0.68 | |
| 100 | 112.08 | 2.21 | 101.79 | 110.66 | 1.43 | |
| Cigarette 2 | 0 | 5.08 | 2.33 | — | 4.92 | 1.95 |
| 5 | 10.25 | 1.59 | 101.69 | 9.93 | 2.14 | |
| 10 | 14.89 | 1.50 | 98.74 | 14.87 | 2.99 | |
| 30 | 34.91 | 1.72 | 99.52 | 35.12 | 2.25 | |
| Cigar | 0 | 20.09 | 1.93 | — | 20.14 | 3.61 |
| 20 | 40.12 | 2.85 | 100.07 | 40.16 | 2.44 | |
| 50 | 70.08 | 3.70 | 99.99 | 70.05 | 5.21 | |
| 100 | 119.77 | 3.28 | 99.73 | 121.41 | 3.64 |