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首页> 外文期刊>Analytica chimica acta >Organic-inorganic nanoparticles molecularly imprinted photoelectrochemical sensor for alpha-solanine based on p-type polymer dots and n-CdS heterojunction
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Organic-inorganic nanoparticles molecularly imprinted photoelectrochemical sensor for alpha-solanine based on p-type polymer dots and n-CdS heterojunction

机译:基于P型聚合物点和N-CDS异质结的有机 - 无机纳米粒子分子印迹光电化学传感器

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In this study, a molecularly imprinted polymer photoelectrochemcal (MIP-PEC) sensor based on semiconducting organic polymer dots (Pdots) and inorganic CdS quantum dots (QDs) has been established for the determination of alpha-Solanine. Specifically, p-type Pdots (p-Pdots) and n-type CdS QDs (n-CdS) were utilized to form organic-inorganic nanoparticles p-n heterojunction to enhance signal response, and their specific energy levels (VB/CB or HOMO/LUMO) were calculated for photoelectrochemical (PEC) bioanalysis application. At the same time, the combination of molecular imprinting technology and photoelectrochemistry overcomes the defeats of photoelectrochemistry which is the absence of selectivity, offers a new MIP-PEC sensor with high sensitivity and excellent selectivity based heterojunction enhanced strategy. In short, this study proposes the semiconducting organic-inorganic nanoparticles p-n heterojunction for molecularly imprinted polymer photoelectrochemcal bioanalysis application, and the MIP-PEC sensor was successfully fabricated based on these materials and methods. In the phosphate buffer solution (PBS), it was clearly observed that the photocurrent has a significant change between elution in acetic acid-ethanol mixture and incubation in template molecular solution because of the faster electron transfer speed, this phenomenon fully showed that the MIP-PEC sensor can specifically detect the target. Thus, the work typically offers a linear range from 0.01 to 1000 ng mL(-1) with a detection limit of 6.5 pg mL(-1) for alpha-Solanine. Furthermore, the fabricated MIP-PEC sensor will confirm the actual application. (C) 2019 Elsevier B.V. All rights reserved.
机译:在该研究中,已经建立了基于半导体有机聚合物点(PDOT)和无机CDS量子点(QDS)的分子印迹聚合物光电体(MIP-PEC)传感器用于测定α-溶含量。具体地,利用p型pdots(p-ppots)和n型Cds qD(n-cds)形成有机 - 无机纳米颗粒pn异质结以增强信号响应,以及它们的特定能级(Vb / cb或homo / lumo用于光电化学(PEC)生物分析应用。同时,分子印迹技术和光电化学的组合克服了光电化学的失败,这是没有选择性的,提供一种具有高灵敏度和优异的基于选择性的异质结的新型MIP-PEC传感器。简而言之,本研究提出了半导体有机 - 无机纳米颗粒P-N异质结来用于分子印迹聚合物光电体生物天然分解应用,并且基于这些材料和方法成功制造MIP-PEC传感器。在磷酸盐缓冲溶液(PBS)中,清楚地观察到光电流在乙酸 - 乙醇混合物中的洗脱之间具有显着的变化,并且由于电子转移速度较快,因此由于电子转移速度较快,这种现象完全显示了MIP- PEC传感器可以专门检测目标。因此,该工作通常提供从0.01至1000ng ml(-1)的线性范围,其检测限为6.5pg ml(-1)的α-溶含量。此外,制造的MIP-PEC传感器将确认实际应用。 (c)2019年Elsevier B.V.保留所有权利。

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