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首页> 外文期刊>Journal of Electroanalytical Chemistry: An International Journal Devoted to All Aspects of Electrode Kinetics, Interfacial Structure, Properties of Electrolytes, Colloid and Biological Electrochemistry >Electrochemical characterization of a glassy carbon electrode modified with microbial succinoglycan monomers and multi-wall carbon nanotubes for the detection of quercetin in an aqueous electrolyte
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Electrochemical characterization of a glassy carbon electrode modified with microbial succinoglycan monomers and multi-wall carbon nanotubes for the detection of quercetin in an aqueous electrolyte

机译:微生物琥珀糖单体和多壁碳纳米管修饰的玻璃碳电极的电化学特性,用于检测水性电解质中的槲皮素

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The glassy carbon electrode (GCE) was modified with multi-wall carbon nanotubes (MWNTs) and succinoglycan monomers (M1, M2 and M3) by dropping small volume of a solution mixture on the GCE surface and the modified electrode was electrochemically characterized for monitoring quercetin that is dispersed in an aqueous electrolyte solution. Quercetin, as an antioxidant, has attracted researcher's much attention to the determination of its concentration in a variety of environment, because it has many biological activities such as cardiovascular protection, anticancer activity, and antiallergy activity. Bare GCE and MWNTs-modified GCE do not show any redox peak of quercetin in a potential range of 0-0.5 V vs. SCE. Three different succinoglycan monomers M1, M2, and M3 were separately immobilized on the GCE surface together with the MWNTs to prepare three different kinds of sensing electrodes, for example, (MWNTs + M1)/GCE, (MWNTs + M2)/GCE, and (MWNTs + M3)/GCE. The GCE modified with MWNTs and beta-cyclodextrin (beta-CD) complex (MWNTs + beta-CD/GCE) was also prepared for comparing its electrochemical behavior with those of the (MWNTs + M1)/GCE, the (MWNTs + M2)/GCE, and the (MWNTs + M3)/GCE. Results showed that the reduction and the oxidation peaks around 350 and 400 mV vs. SCE were observed with the (MWNTs + beta-CD)/GCE, the (MWNTs + M2)/GCE, and the (MWNTs + M3)/GCE. Likely to the (MWNTs + beta-CD)/GCE, cyclic voltammograms of the (MWNTs + M3)/GCE showed pH-dependent characteristics. Anodic peaks shown around 400 mV vs. SCE in the cyclic voltammograms of the (MWNTs + M2)/GCE and the (MWNTs + M3)/GCE are due to the oxidation of quercetin that is captured by the immobilized M2 or M3. But, because M1 does not have a succinyl group as a substituent, the (MWNTs + M1)/GCE does not show any redox peak of the cyclic voltammogram in the given potential range. Succinyl groups in succinoglycan monomers are to be associated with the conjugation of MWNTs and water-dispersed quercetin molecules. Square wave voltammograms and calibration curve of the (MWNTs + M3)/GCE were shown in the range of 2.36-59 mu M of quercetin and about sixteen times of higher sensitivity was observed compared with the measured sensitivity of the (MWNTs + beta-CD)/GCE. Electrode kinetic parameters, V-max and K-m of M3 in an aqueous medium obtained from the Lineweaver-Burk plots were 15 mu A and 7.82 mu M, respectively. @ 2008 Elsevier B.V. All rights reserved.
机译:玻碳电极(GCE)用多壁碳纳米管(MWNTs)和琥珀聚糖单体(M1,M2和M3)进行了修饰,方法是在GCE表面上滴入少量溶液混合物,并对修饰的电极进行电化学表征以监测槲皮素分散在电解质水溶液中。槲皮素作为一种抗氧化剂,已引起研究人员对在各种环境中确定其浓度的关注,因为它具有许多生物活性,例如心血管保护,抗癌活性和抗过敏活性。裸GCE和MWNTs修饰的GCE在相对于SCE的0-0.5 V电位范围内未显示槲皮素的任何氧化还原峰。将三种不同的琥珀聚糖单体M1,M2和M3与MWNT分别固定在GCE表面上,以制备三种不同种类的感应电极,例如(MWNTs + M1)/ GCE,(MWNTs + M2)/ GCE和(MWNT + M3)/ GCE。还制备了用MWNT和β-环糊精(β-CD)配合物(MWNTs +β-CD/ GCE)修饰的GCE,用于将其与(MWNTs + M1)/ GCE(MWNTs + M2)的电化学行为进行比较。 / GCE和(MWNTs + M3)/ GCE。结果表明,在(MWNTs +β-CD)/ GCE,(MWNTs + M2)/ GCE和(MWNTs + M3)/ GCE的条件下,相对于SCE,还原和氧化峰均在350和400 mV左右。类似于(MWNTs +β-CD)/ GCE,(MWNTs + M3)/ GCE的循环伏安图显示出pH依赖性。在(MWNTs + M2)/ GCE和(MWNTs + M3)/ GCE的循环伏安图中,相对于SCE而言,出现约400 mV的阳极峰是由于固定化M2或M3捕获的槲皮素氧化。但是,由于M1不具有琥珀酰基作为取代基,因此(MWNTs + M1)/ GCE在给定的电位范围内不会显示出循环伏安图的任何氧化还原峰。琥珀聚糖单体中的琥珀酰基应与MWNT和水分散的槲皮素分子的结合有关。 (MWNTs + M3)/ GCE的方波伏安图和校准曲线显示在槲皮素2.36-59μM的范围内,与(MWNTs +β-CD)测得的灵敏度相比,观察到的灵敏度高约16倍)/ GCE。从Lineweaver-Burk图获得的水介质中M3的电极动力学参数V-max和K-m分别为15μA和7.82μM。 @ 2008 Elsevier B.V.保留所有权利。

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