| Literature DB >> 26885462 |
Sanda Boca1, Cosmin Leordean1, Simion Astilean2, Cosmin Farcau1.
Abstract
Chemiresistors are a class of sensitive electrical devices capable of detecting (bio)chemicals by simply monitoring electrical resistance. Sensing based on surface enhanced Raman scattering (SERS) represents a radically different approach, in which molecules are optically detected according to their vibrational spectroscopic fingerprint. Despite different concepts are involved, one can find in the literature examples from both categories reporting sensors made of gold nanoparticles. The same building blocks appear because both sensor classes share a common principle: nanometric interparticle gaps are needed, for electron tunneling in chemiresistors, and for enhancing electromagnetic fields by plasmon coupling in SERS-based sensors. By exploiting such nano-gaps in self-assembled films of gold nanoparticles, we demonstrate the proof of concept of a dual electrical/optical sensor, with both chemiresistive and SERS capabilities. The proposed device is realized by self-assembling 15 nm gold nanoparticles into few micrometers-wide strips across commercially available interdigitated electrodes. The dual-mode operation of the device is demonstrated by the detection of a biologically relevant model analyte, 4-mercaptophenyl boronic acid.Entities:
Keywords: chemiresistor; colloidal nanoparticles; convective self-assembly; interparticle gaps; surface enhanced Raman scattering
Year: 2015 PMID: 26885462 PMCID: PMC4734427 DOI: 10.3762/bjnano.6.259
Source DB: PubMed Journal: Beilstein J Nanotechnol ISSN: 2190-4286 Impact factor: 3.649
Figure 1Schematic representation of the concept of a dual electric/optical sensor made of a nanoparticle assembly connected by metal electrodes on a substrate.
Figure 2(a) Optical image of the IDE (Dropsens) electrically connected by conductor wires; (b) Optical image of a region containing Au NPs assembled as a strip between a pair of Au IDE. (c) AFM image of the region shown in b); (d) SEM image showing the dense NP assembly.
Figure 3(a) Scheme of the experimental setup for chemiresistive detection; (b) Chemiresistor response: electrical resistance as function of time, as the sensor is exposed to different media; (c) SERS spectra on the chemiresistor surface before and after exposure to MBA.