| Literature DB >> 24279451 |
Ilsoo Kim1, So-Eun Kim, Sanghun Han, Hyungsuk Kim, Jaehyung Lee, Du-Won Jeong, Ju-Jin Kim, Yong-Beom Lim, Heon-Jin Choi.
Abstract
Au-coated vertical silicon nanowire electrode array (VSNEA) was fabricated using a combination of bottom-up and top-down approaches by chemical vapor deposition and complementary metal-oxide-semiconductor process for biomolecule sensing. To verify the feasibility for the detection of biomolecules, Au-coated VSNEA was functionalized using peptides having a fluorescent probe. Cyclic voltammograms of the peptide-functionalized Au-coated VSNEA show a steady-state electrochemical current behavior. Because of the critically small dimension and vertically aligned nature of VSNEA, the current density of Au-coated VSNEA was dramatically higher than that of Au film electrodes. Au-coated VSNEA further showed a large current difference with and without peptides that was nine times more than that of Au film electrodes. These results indicate that Au-coated VSENA is highly effective device to detect peptides compared to conventional thin-film electrodes. Au-coated VSNEA can also be used as a divergent biosensor platform in many applications.Entities:
Year: 2013 PMID: 24279451 PMCID: PMC4221645 DOI: 10.1186/1556-276X-8-502
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1SEM and TEM images of the synthesized Si NWs. (a) SEM image tilted by 30° and (b) cross-sectional SEM image of vertical Si NWs. (c) Typical low-magnitude TEM image and (d) HRTEM image of a Si NW. The inset of part (c) shows a SAED pattern of the NW. The inset SAED pattern is related with a crystal plane of the NW, and the NW growth direction spots express the [111] crystal planes. It indicates Si NW has [111] growth direction.
Figure 2Fabrication scheme of Au-coated VSNEA and corresponding SEM images. (a to i) SEM images tilted by 30o. (a, f) Vertical Si NWs grown on a (111) Si substrate; (b, g) Si NW array coated with a first SiO2 passivation layer; (c, h) Si NW array after coating with an Au electrode; (d, i) Si NW electrode array coated with a second SiO2 passivation layer. (e) Cross-sectional scheme of VSNEA.
Figure 3Scheme of peptide-functionalized Au-coated NWs and bright field and fluorescence microscopy images. (a) Sequence of peptides labeled with carboxyfluorescein and schematic model of peptide-decorated Au-coated vertical Si NWs. (b) Scheme for fluorescence analysis of peptide-decorated Au-coated VSNEA. Bright field image (c) and corresponding fluorescence image (d) of the non-decorated VSNEA. (Black dots indicated with red arrows represent vertical NWs). Bright field image (e) and corresponding fluorescence image (f) of the peptide-decorated VSNEA (black dots indicated by red arrows again represent vertical NWs). All microscopy images are taken at a magnification of 1,000.
Figure 4Schematic of three-electrode configuration system and CV measurements of Au-coated VSNEA. (a) Schematic of three-electrode configuration used in CV measurement system with Au-coated VSNEA as a working electrode. (b) CV measurements of Au-coated VSNEA in deionized water and 100 mM K3Fe(CN)6. All CV measurements are performed at a scan rate of 20 mV/s. The inset of part (b) shows an electrolyte bath attached the VSNEA device for CV measurements.
Calculation of current density of Au film and VSNEA based on CV measurements
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Calculation of current difference of a Au film and a VSNEA electrode, based on the results of CV measurements
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