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用于酚类化合物生物传感应用的铋纳米颗粒。

Bismuth nanoparticles for phenolic compounds biosensing application.

机构信息

Nanobioelectronics & Biosensors Group, CIN2(ICN-CSIC), Catalan Institute of Nanotechnology, Campus de la UAB, 08193 Bellaterra, Barcelona, Spain.

出版信息

Biosens Bioelectron. 2013 Feb 15;40(1):57-62. doi: 10.1016/j.bios.2012.06.010. Epub 2012 Jun 23.

Abstract

The rapid determination of trace phenolic compounds is of great importance for evaluating the total toxicity of contaminated water samples. Nowadays, electrochemical tyrosinase (Tyr) based biosensors constitute a promising technology for the in situ monitoring of phenolic compounds because of their advantages such as high selectivity, low production cost, promising response speed, potential for miniaturization, simple instrumentation and easy automatization. A mediator-free amperometric biosensor for phenolic compounds detection based on the combination of bismuth nanoparticles (BiNPs) and Tyr for phenol detections will be hereby reported. This is achieved through the integration of BiNPs/Tyr onto the working electrode of a screen printed electrode (SPE) by using glutaraldehyde as a cross-linking agent. BiNPs/Tyr biosensor is evaluated by amperometric measurements at -200 mV DC and a linear range of up to 71 μM and 100 μM and a correlation coefficient of 0.995 and 0.996 for phenol and catechol, respectively. The very low DC working potential ensures the avoidance of interferences making this biosensor an advantageous device for real sample applications. In addition, the response mechanism including the effect of BiNPs based on electrochemical studies and optical characterizations will be also discussed. The obtained results may open the way to many other BiNPs applications in the biosensing field.

摘要

痕量酚类化合物的快速测定对于评估污染水样的总毒性非常重要。如今,基于电化学酪氨酸酶(Tyr)的生物传感器由于其高选择性、低成本、有前景的响应速度、小型化潜力、简单的仪器和易于自动化等优点,构成了一种用于原位监测酚类化合物的有前途的技术。本文报道了一种基于纳米铋颗粒(BiNPs)和 Tyr 的无介体电流型生物传感器,用于检测酚类化合物。通过使用戊二醛作为交联剂,将 BiNPs/Tyr 整合到丝网印刷电极(SPE)的工作电极上,实现了这一点。通过在-200 mV DC 下进行电流测量来评估 BiNPs/Tyr 生物传感器,对于苯酚和儿茶酚,线性范围分别高达 71 μM 和 100 μM,相关系数分别为 0.995 和 0.996。非常低的直流工作电位确保了避免干扰,这使得该生物传感器成为实际样品应用的有利设备。此外,还将讨论包括基于电化学研究和光学特性的 BiNPs 效应在内的响应机制。所得结果可能为 BiNPs 在生物传感领域的许多其他应用开辟道路。

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