| Literature DB >> 24608007 |
Nunzio Cennamo1, Giancarla Alberti2, Maria Pesavento3, Girolamo D'Agostino4, Federico Quattrini5, Raffaela Biesuz6, Luigi Zeni7.
Abstract
A simple, small size, and low cost sensor based on a Deferoxamine Self Assembled Monolayer (DFO-SAM) and Surface Plasmon Resonance (SPR) transduction, in connection with a Plastic Optical Fiber (POF), has been developed for the selective detection of Fe(III). DFO-SAM sensors based on appropriate electrochemical techniques can be frequently found in the scientific literature. In this work, we present the first example of a DFO-SAM sensor based on SPR in an optical fiber. The SPR sensing platform was realized by removing the cladding of a plastic optical fiber along half the circumference, spin coating a buffer of Microposit S1813 photoresist on the exposed core, and finally sputtering a thin gold film. The hydroxamate siderophore deferoxamine (DFO), having high binding affinity for Fe(III), is then used in its immobilized form, as self-assembled monolayer on the gold layer surface of the POF sensor. The results showed that the DFO-SAM-POF-sensor was able to sense the formation of the Fe(III)/DFO complex in the range of concentrations between 1 μm and 50 μm with a linearity range from 0 to 30 μm of Fe(III). The selectivity of the sensor was also proved by interference tests.Entities:
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Year: 2014 PMID: 24608007 PMCID: PMC4003962 DOI: 10.3390/s140304657
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.POF chemical sensor based on SPR and experimental setup.
Figure 2.Transmission spectra of DSO-SAM-POF sensor in 0.5% HNO3 at increasing concentration of Fe(III). (a) measures with DFO-SAM modified gold layer (DFO-SAM sensor); (b) measures with bare gold layer (bare sensor). Inset: Zoom of the resonance wavelengths region.
Figure 3.Standardization curves of Fe(III) on two DFO-SAM-POF sensors. Fe(III) standard solutions in 0.5% HNO3 (pH = 1.1). 20–40 μl of the standard solution are dropped over the gold layer of the sensor, and the transmission spectra are recorded after 5 min incubation. Experiments performed with two different sensors: DFO-SAM-POF (black diamonds); DFO-SAM-POF (red circles). The error bars correspond to the standard deviation of three replicates for each standard solution.
Figure 4.SPR transmission spectra obtained on DFO-SAM-POF sensor for two metal ions: Na+ and Ca2+. For comparison, the spectrum of 0.5% HNO3 (”buffer“ solution) is reported. Inset: Zoom of the resonance wavelengths region.
Figure 5.SPR transmission spectra obtained on DFO-SAM-POF sensor for different concentrations of Fe(III). The sensor has been conditioned in Ca2+ 5 × 10−4 M. Inset: Zoom of the resonance wavelengths region.
Figure 6.Standardization curves of Fe(III) on DFO-SAM-POF sensor. : Δλ obtained from the transmission spectrum in 0.5% M HNO3 at increasing Fe(III) concentration; ♢: Δλ obtained from the transmission spectrum in 0.01 M Na2EDTA (washing solution) after each determination.