Graphical abstract<'/> Development of sensitive impedimetric urea biosensor using DC sputtered Nano-ZnO on TiO_2 thin film as a novel hierarchical nanostructure transducer
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Development of sensitive impedimetric urea biosensor using DC sputtered Nano-ZnO on TiO_2 thin film as a novel hierarchical nanostructure transducer

机译:TiO_2薄膜上直流溅射纳米ZnO作为新型分层纳米结构传感器的敏感阻抗尿素生物传感器的研制

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Graphical abstractDisplay OmittedHighlightsApplication and optimization of DC sputtering for homogeneous ZnO thin film formation.Design and surface engineering of 3D hierarchical Nano-ZnO/TiO2thin film as a novel biosensing transducer.Exploiting advantageous of 3D hierarchical Nano-ZnO/TiO2thin film which facilitate surface regeneration.Application of impedimetric assessment for urea biosensing due to its rapidity, sensitivity, and repeatability.Abstract3D hierarchical Nano-ZnO/TiO2on conductive fluorinated-tin oxide (FTO) layer was fabricated by reactive direct current (DC) magnetron sputtering of ZnO, at the optimized instrumental deposition conditions, on a pre-covered TiO2surface with Polyvinyl Alcohol (PVA) as an omissible polymer in a pattern of parallel strips (Nano-ZnO/PVA/TiO2/FTO) following by PVA omission via annealing process, which resulted in an efficient porous media for urease (Urs) enzyme immobilization (Urs/Nano-ZnO/TiO2/FTO) designed for urea biosensing. The criteria for TiO2selection as substrate was based on: (i) its ability to promote electron transfer between ZnO to FTO substrate, (ii) affording high electronic density to the biosensor surface as an electrostatic repulsion layer for the anionic interferents at the biological media, and (iii) enhancement of urea biosensing by the formation of heterojunctions with ZnO. Characterization of the surface morphology of 3D hierarchical Nano-ZnO/TiO2film by field emission-scanning electron microscopy (FE-SEM) exhibits cavities of nanoporous ZnO film as an effective biosensing area for Urs enzyme immobilization. Step by step monitoring of Urs/Nano-ZnO/TiO2/FTO biosensor fabrication was performed using electrochemical techniques such as cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS). Fabricated Urs/Nano-ZnO/TiO2/FTO biosensor was used for urea determination using impedimetric assessment. The impedimetric results show high sensitivity for urea detection within 5–205mgdl−1and limit of detection as 2mgdl−1. A fast response of fabricated biosensor can usually allow a real-time analysis.
机译: 图形摘要 省略显示 重点 均匀溅射ZnO薄层的直流溅射应用和优化薄膜形成。 设计并执行3D分层纳米ZnO / TiO 2 薄膜的表面工程作为新型生物传感传感器。 利用3D的优势分层的纳米ZnO / TiO 2 薄膜,有助于表面再生。 由于尿素生物传感的阻抗分析的应用 摘要 3D层次结构通过对ZnO进行反应性直流(DC)磁控溅射,在室温下制备导电的氟化锡氧化物(FTO)层上的纳米ZnO / TiO 。优化的仪器沉积条件,在预先覆盖的TiO 2 表面上,以聚乙烯醇(PVA)为可省略的聚合物,呈平行条状(Nano -ZnO / PVA / TiO 2 / FTO),随后通过退火过程省略了PVA,从而形成了固定尿素酶(Urs)酶的有效多孔介质(Urs / Nano-ZnO / TiO 2 / FTO)设计用于尿素生物传感。选择TiO 2 作为底物的标准基于:(i)促进ZnO与FTO底物之间电子转移的能力;(ii)提供高的电子密度到生物传感器表面,作为在生物介质上的阴离子干扰物的静电排斥层,以及(iii)通过与ZnO形成异质结来增强尿素生物传感。通过场发射扫描电子显微镜(FE-SEM)表征的3D分层纳米ZnO / TiO 2 薄膜的表面形态显示出纳米多孔ZnO的空腔膜作为Urs酶固定化的有效生物传感区域。使用电化学技术(如循环伏安法(CV)和电化学阻抗)逐步监测Urs / Nano-ZnO / TiO 2 / FTO生物传感器的制造光谱学(EIS)。制成的Urs / Nano-ZnO / TiO 2 / FTO生物传感器用于通过阻抗法评估尿素。阻抗分析结果表明,尿素检测在5–205mgdl -1 范围内具有很高的灵敏度,检出限为2mgdl −1 。预制生物传感器的快速响应通常可以进行实时分析。

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