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An electrochemical biosensor based on human serum albumin/graphene oxide/3-aminopropyltriethoxysilane modified ITO electrode for the enantioselective discrimination of d- and l-tryptophan
Biosensors and Bioelectronics Cilt 42 ss. 321-325
Scopus Toplam 120 atıf DOI
A new electrochemical biosensor based on the human serum albumin/graphene oxide/3-aminopropyltriethoxysilane modified indium tin oxide electrode (ITO/APTES/GO/HSA) has been developed for the discrimination of tryptophan (Trp) enantiomers. The electrode has been characterized by scanning electron microscopy (SEM) and electrochemical techniques. The electrochemical behaviors of the enantiomeric pairs (d- and l-Trp) at the ITO/APTES/GO/HSA electrode have been investigated by cyclic voltammetry in the concentration range of 0.10-1.0. mM. A clear separation between the oxidation peak potentials of d- and l-Trp, at 0.86 and 1.26. V, respectively, has suggested that the ITO/APTES/GO/HSA electrode can be used as an electrochemical biosensor for the discrimination of Trp enantiomers. In order to find the percentage of an enantiomeric form of tryptophan in a mixture, the ITO/APTES/GO/HSA electrode is used for the simultaneous detection of d- and l-Trp which showed that the percentage of one enantiomeric form can be easily measured in the presence of the other. © 2012 Elsevier B.V.
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Green synthesis of reduced graphene oxide/nanopolypyrrole composite: Characterization and H2O2 determination in urine
Rsc Advances Cilt 4 ss. 12457-12466
Scopus Havuzumuzda 30 atıf almış
Here we report on a novel, simple and eco-friendly approach for the fabrication of a reduced Graphene Oxide/nanopolypyrrole (rGO/nPPy) composite material and its electrochemical performance for detection of hydrogen peroxide on a glassy carbon electrode. The characterization of the as-prepared rGO/nPPy composite was investigated by Fourier transform infrared spectroscopy, thermogravimetric analysis, ultraviolet-visible spectroscopy, scanning electron microscopy, contact angle measurement, cyclic voltammetry and electrochemical impedance spectroscopy. Cyclic voltammetry, differential pulse voltammetry and chronoamperometry techniques were used to investigate and optimize the performance of the developed electrochemical biosensor. The proposed biosensor showed excellent analytical response towards the quantification of H 2O2 at pH 7.40. Under the optimized conditions, the biosensor shows a linear response range from 1.0 × 10-7 to 4.0 × 10-6 M concentrations of H2O2. The limit of detection was determined to be 34 nM. Reproducibility, sensitivity, stability and anti-interference capability of the fabricated biosensor for the detection of H2O2 were examined. The biological relevance of the developed electrochemical biosensor was further studied by the determination of H2O2 in urine samples. The real sample analysis of H2O2 was achieved before and after drinking coffee in urine samples. The successful and sensitive determination of H 2O2 urine samples indicates that the proposed electrochemical biosensor can be applied to the quantification analysis of H2O2 in real samples. © 2014 The Royal Society of Chemistry.
Atıf Yapan Makale Bilgileri
Kurumlar (2)
Necmettin Erbakan Üniversitesi Meram, Turkey
Selçuk Üniversitesi Selçuklu, Turkey