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Nanomaterials for biosensing applications: a review

机译:用于生物传感应用的纳米材料:综述

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摘要

A biosensor device is defined by its biological, or bioinspired receptor unit with unique specificities toward corresponding analytes. These analytes are often of biological origin like DNAs of bacteria or viruses, or proteins which are generated from the immune system (antibodies, antigens) of infected or contaminated living organisms. Such analytes can also be simple molecules like glucose or pollutants when a biological receptor unit with particular specificity is available. One of many other challenges in biosensor development is the efficient signal capture of the biological recognition event (transduction). Such transducers translate the interaction of the analyte with the biological element into electrochemical, electrochemiluminescent, magnetic, gravimetric, or optical signals. In order to increase sensitivities and to lower detection limits down to even individual molecules, nanomaterials are promising candidates due to the possibility to immobilize an enhanced quantity of bioreceptor units at reduced volumes and even to act itself as transduction element. Among such nanomaterials, gold nanoparticles, semi-conductor quantum dots, polymer nanoparticles, carbon nanotubes, nanodiamonds, and graphene are intensively studied. Due to the vast evolution of this research field, this review summarizes in a non-exhaustive way the advantages of nanomaterials by focusing on nano-objects which provide further beneficial properties than “just” an enhanced surface area.
机译:生物传感器设备是由其生物或受生物启发的受体单元定义的,它对相应的分析物具有独特的特异性。这些分析物通常具有生物学起源,例如细菌或病毒的DNA或从感染或受污染的生物体的免疫系统(抗体,抗原)产生的蛋白质。当具有特定特异性的生物受体单元可用时,此类分析物也可以是简单的分子,例如葡萄糖或污染物。生物传感器开发中的许多其他挑战之一是生物识别事件(转导)的有效信号捕获。这种换能器将分析物与生物元素的相互作用转化为电化学,电化学发光,磁,重量或光学信号。为了增加灵敏度并降低甚至单个分子的检测极限,纳米材料是有希望的候选物,因为它有可能以减小的体积固定增加量的生物受体单元,甚至自身充当转导元件。在此类纳米材料中,对金纳米颗粒,半导体量子点,聚合物纳米颗粒,碳纳米管,纳米金刚石和石墨烯进行了深入研究。由于该研究领域的巨大发展,本文以非穷尽的方式总结了纳米材料的优势,重点关注的是纳米物体,这些物体比“仅仅”增加表面积提供了更多的有益特性。

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