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A new electrochemical sensor based on Fe3O4 functionalized graphene oxide-gold nanoparticle composite film for simultaneous determination of catechol and hydroquinone
Scopus
Toplam 238 atıf DOI
Catechol (1,2-dihydroxybenzene) and hydroquinone (1,4-dihydroxybenzene) are two isomers of phenolic compounds which often coexist and interfere with each other during their identification in environmental samples. This study presents simultaneous determination of catechol (CC) and hydroquinone (HQ) using a new electrochemical sensor based on Fe3O4 functionalized graphene oxide-gold nanoparticle composite (AuNPs/Fe3O4-APTES-GO). CV results show well-defined oxidation peaks with anodic peaks at 0.15 V for CC and 0.05 V for HQ, and the peak-to-peak separation for CC and HQ is about 100 mV. Under the optimized conditions, the current response of AuNPs/Fe3O4-APTES-GO/GCE is linear for CC and HQ in the range of 2-145 μM and 3-137 μM, respectively. The detection limits for CC and HQ were found to be 0.8 μM and 1.1 μM, respectively. The fabricated sensor was successfully applied for the determination of CC and HQ in tap water sample with satisfactory recovery.
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Pyridoxine determination in energy drink, pharmaceutical, and artificial urine samples using a laboratory-made disposable screen-printed electrode modified with a ternary nanocomposite
Scopus
Havuzumuzda 3 atıf almış
Pyridoxine (Pyr), known as vitamin B6 (VB6), is a crucial nutrient that is involved in many aspects of macronutrient metabolism, neurotransmitter synthesis, and immune function. It is commonly found in a variety of foods and dietary supplements. With the aim of detecting Pyr rapidly and easily, a new electrochemical sensing platform was designed by using a laboratory-made disposable screen-printed electrode (LabSPE) modified with a ternary composite composed of SiC, Fe3O4 and reduced graphene oxide (rGO). The sensing nanomaterials within the composite were characterized using FT-IR, XRD, XPS, FE-SEM, and EDX analyses. The effects of the conductive nature of rGO, the contribution of SiC to electron transport, and the electrocatalytic ability of Fe3O4 on the electrooxidation signal of Pyr were studied in detail by differential pulse voltammetry (DPV) and cyclic voltammetry (CV) techniques. With a wide operating range of 0.75–––225 µM and a detection limit of 0.10 µM, the sensor performed better than or comparable to Pyr sensors reported in previous years. The applicability of the prepared sensor to real samples was evaluated on various samples containing Pyr, such as energy drink, commercial drugs, and artificial urine, indicating highly acceptable recoveries between 101.8 and 102.2 %. To test the selectivity of the present sensor, the current responses were recorded in the presence of other B vitamin species. The results showed that Fe3O4-SiC-rGO/LabSPE has good selectivity for the electrochemical determination of Pyr. The synergistic effect of rGO, SiC, and Fe3O4 nanostructures have enhanced the current signal of the fabricated sensor for the oxidation of Pyr.
Atıf Yapan Makale Bilgileri
Kurumlar (2)
Recep Tayyip Erdogan University
Rize, Turkey
Selçuk Üniversitesi
Selçuklu, Turkey