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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Zinc oxide-multiwalled carbon nanotubes hybrid nanocomposite based urea biosensor
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Zinc oxide-multiwalled carbon nanotubes hybrid nanocomposite based urea biosensor

机译:氧化锌-多壁碳纳米管杂化纳米复合材料尿素生物传感器

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摘要

An efficient matrix comprising a hybrid nanocomposite of zinc oxide (ZnO) and multiwalled carbon nanotubes (MWCNTs) has been synthesised on indium tin oxide coated glass slides (ITO/Glass) using a chemical route deposition technique for the realization of an efficient urea biosensor. Urease (Urs) was used as the specific enzyme for urea detection and was physically immobilized over the surface of the hybrid nanocomposite matrix based (ZnO-MWCNT/ITO) electrode. The fabricated Urs/ZnO-MWCNT/ITO bioelectrode was characterized using electrochemical impedance spectroscopy (EIS) and cyclic voltammetric (CV) techniques. The nanocomposite based bioelectrode i.e. Urs/ZnO-MWCNT/ITO exhibits enhanced biosensing response characteristics as compared to that of the bare ZnO based (Urs/ZnO/ITO) bioelectrode. The prepared bioelectrode (Urs/ZnO-MWCNT/ITO) exhibits a very high sensitivity of about 43.02 μA mM~(-1) cm~(-2) and a long shelf-life of more than 4 months (>16 weeks). The low Michaelis-Menten parameter (K_m) value, only 0.85 mM, indicates high affinity of the immobilized urease on the surface of hybrid nanocomposite matrix towards its analyte (urea). The obtained results in the present study are encouraging and will pave the way towards the realization of an efficient urea biosensor.
机译:使用化学路线沉积技术在氧化铟锡涂层的载玻片(ITO /玻璃)上合成了一种有效的基质,该基质包括氧化锌(ZnO)和多壁碳纳米管(MWCNT)的杂化纳米复合材料,用于实现高效的尿素生物传感器。尿素酶(Urs)用作尿素检测的特异性酶,并被物理固定在基于混合纳米复合基质(ZnO-MWCNT / ITO)的电极表面上。使用电化学阻抗谱(EIS)和循环伏安(CV)技术对制备的Urs / ZnO-MWCNT / ITO生物电极进行了表征。与基于裸露的ZnO的(Urs / ZnO / ITO)生物电极相比,基于纳米复合材料的生物电极即Urs / ZnO-MWCNT / ITO表现出增强的生物传感响应特性。制备的生物电极(Urs / ZnO-MWCNT / ITO)表现出非常高的灵敏度,约为43.02μAmM〜(-1)cm〜(-2),并且具有超过4个月(> 16周)的长保存期限。 Michaelis-Menten参数(K_m)值低,仅为0.85 mM,表明杂化纳米复合材料基质表面上固定的脲酶对分析物(尿素)的亲和力高。在本研究中获得的结果令人鼓舞,并将为实现高效尿素生物传感器铺平道路。

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