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氧化铜纳米粒子复合聚羟基丁酸酯纳米复合材料用于潜在的生物传感应用。

Cupric oxide nanoparticles incorporated poly(hydroxybutyrate) nanocomposite for potential biosensing application.

机构信息

Department of Applied Sciences, National Textile University, Faisalabad 37610, Pakistan.

Department of Applied Sciences, National Textile University, Faisalabad 37610, Pakistan.

出版信息

Int J Biol Macromol. 2022 Jul 31;213:1018-1028. doi: 10.1016/j.ijbiomac.2022.06.018. Epub 2022 Jun 9.

Abstract

We report the synthesis of a novel electrochemical biosensor comprising of cupric oxide (CuO) nanoparticles (NPs) mediated poly(hydroxybutyrate) (PHB) composite film with polyvinyl alcohol (PVA) as a binder/template support using the solution casting method for the detection of a biomolecule i.e., ascorbic acid (AA). The specimens were characterized for surface, chemical, mechanical, optical, and electrochemical attributes. The results expressed regular mediation of CuO NPs in the PHB/PVA matrix towards nanobiocomposite formation with enhanced crystallinity, inter-molecular interactions, mechanical, and electrochemical attributes, and decreased hydrophilicity and bandgap, thus being useful in potential optoelectronic devices. The synthesized biocomposite film exhibited a tensile strength of 86.24 ± 4.10 N which might be due to reinforcement/uniform dispersion of the CuO nanofiller in the PHB-based matrix. The PHB/CuO composite, then, deposited on a glassy carbon electrode surface exhibited good electrocatalytic activity towards the AA in the aqueous media even at low analyte concentrations. Such modified electrode surfaces with metal/biopolymer complex could find possible applications in the detection of other bioactive molecules.

摘要

我们报告了一种新型电化学生物传感器的合成,该传感器由氧化铜 (CuO) 纳米粒子 (NPs) 介导的聚羟基丁酸酯 (PHB) 复合膜组成,其中聚氧化乙烯 (PVA) 作为粘合剂/模板支撑体,使用溶液浇铸法检测生物分子,如抗坏血酸 (AA)。使用各种技术对样品进行了表面、化学、机械、光学和电化学特性的表征。结果表明,CuO NPs 在 PHB/PVA 基质中得到了规则的介导,从而形成了纳米生物复合材料,具有增强的结晶度、分子间相互作用、机械和电化学特性,以及降低的亲水性和带隙,因此可用于潜在的光电设备。合成的生物复合材料薄膜的拉伸强度为 86.24 ± 4.10 N,这可能是由于 CuO 纳米填料在 PHB 基基质中的增强/均匀分散。然后,将 PHB/CuO 复合材料沉积在玻碳电极表面上,即使在低分析物浓度下,在水介质中对 AA 也表现出良好的电催化活性。这种具有金属/生物聚合物复合物的修饰电极表面可能在检测其他生物活性分子方面有潜在的应用。

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