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首页> 外文期刊>Sensors and Actuators >Multiwalled carbon nanotubes-based pencil graphite electrode modified with an electrosynthesized molecularly imprinted nanofilm for electrochemical sensing of methionine enantiomers
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Multiwalled carbon nanotubes-based pencil graphite electrode modified with an electrosynthesized molecularly imprinted nanofilm for electrochemical sensing of methionine enantiomers

机译:用电合成的分子印迹纳米膜修饰的基于碳纳米管的多壁铅笔石墨电极,用于蛋氨酸对映体的电化学传感

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Enantioselective electrochemical nanosensors for methionine isomers, based on electropolymerized molecular imprinting approach, have been fabricated. For this, benzidine and methionine were first assembled on the surface of multiwalled carbon nanotubes-modified pencil graphite electrode with the formation of amide and subsequent electropolymerization. During the course of electropolymerization, methionine molecules were instantly oxidized to methionine sulfone as print molecules involving electrostatically driven hydrogen-bonding links in the polymer-template adduct. After template (methionine sulfone) extraction, a novel molecularly imprinted polymer film was eventually coated over the electrode surface, possessing several molecular cavities. These cavities selectively encapsulated L-methionine in its oxidized form. The modified electrode responded maximum differential pulse cathodic stripping voltammetry response at optimized operating conditions. A linearity in the current-concentration profile was observed in the wide range [11.7-206.3 ng mL~(-1) (aqueous), 11.7-197.4 (pharmaceutical), and 11.8-152.3 ng mL~(-1) (blood serum)] of L-methionine concentration with detection limit 2.4-3.0 ng mL~(-1) (S/N = 3). The average recovery of analyte was higher than 98.0% with RSD<4%, without any cross-reactivity and false positives. The proposed method has also been examined for the enantioselective recognition of methionine isomers (D- and L-) quantitatively, in complicated matrices of real samples.
机译:基于电聚合分子印迹方法,已制备了蛋氨酸异构体的对映选择性电化学纳米传感器。为此,首先将联苯胺和甲硫氨酸组装在多壁碳纳米管改性的铅笔状石墨电极的表面,形成酰胺并随后进行电聚合。在电聚合过程中,蛋氨酸分子立即被氧化为蛋氨酸砜,成为涉及聚合物模板加合物中静电驱动的氢键连接的印刷分子。在模板(甲硫氨酸砜)提取后,一种新型的分子印迹聚合物薄膜最终被涂覆在电极表面上,具有多个分子腔。这些腔以其氧化形式选择性地包封L-蛋氨酸。改进的电极在优化的操作条件下响应最大差分脉冲阴极溶出伏安法响应。在宽范围的[11.7-206.3 ng mL〜(-1)(水溶液),11.7-197.4(药物)和11.8-152.3 ng mL〜(-1)(血液)中观察到电流浓度分布呈线性关系)]的L-蛋氨酸浓度,检出限为2.4-3.0 ng mL〜(-1)(S / N = 3)。分析物的平均回收率高于98.0%,RSD <4%,无交叉反应和假阳性。在实际样品的复杂基质中,还对所提出的方法进行了定量检测,以对甲硫氨酸异构体(D-和L-)的对映选择性进行了研究。

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