Department of Environmental, Water, and Earth Sciences, Tshwane University of Technology, Private Bag X680, Arcadia, Pretoria 0001, South Africa.
Sensors (Basel). 2012;12(1):923-53. doi: 10.3390/s120100923. Epub 2012 Jan 16.
Different classes of polymeric materials such as nanomaterials, sol-gel materials, conducting polymers, functional polymers and biomaterials have been used in the design of sensors and biosensors. Various methods have been used, for example from direct adsorption, covalent bonding, crossing-linking with glutaraldehyde on composites to mixing the enzymes or use of functionalized beads for the design of sensors and biosensors using these polymeric materials in recent years. It is widely acknowledged that analytical sensing at electrodes modified with polymeric materials results in low detection limits, high sensitivities, lower applied potential, good stability, efficient electron transfer and easier immobilization of enzymes on electrodes such that sensing and biosensing of environmental pollutants is made easier. However, there are a number of challenges to be addressed in order to fulfill the applications of polymeric based polymers such as cost and shortening the long laboratory synthetic pathways involved in sensor preparation. Furthermore, the toxicological effects on flora and fauna of some of these polymeric materials have not been well studied. Given these disadvantages, efforts are now geared towards introducing low cost biomaterials that can serve as alternatives for the development of novel electrochemical sensors and biosensors. This review highlights recent contributions in the development of the electrochemical sensors and biosensors based on different polymeric material. The synergistic action of some of these polymeric materials and nanocomposites imposed when combined on electrode during sensing is discussed.
不同类别的聚合材料,如纳米材料、溶胶-凝胶材料、导电聚合物、功能聚合物和生物材料,已被用于传感器和生物传感器的设计。近年来,人们已经使用了各种方法,例如直接吸附、共价键合、用戊二醛交联复合材料,以及将酶混合或使用功能化珠粒,来设计使用这些聚合材料的传感器和生物传感器。人们普遍认为,在电极上修饰聚合材料进行分析检测,可以实现更低的检测限、更高的灵敏度、更低的应用电位、更好的稳定性、更有效的电子转移以及更易于将酶固定在电极上,从而更容易实现对环境污染物的检测和生物检测。然而,为了实现基于聚合材料的应用,还需要解决一些挑战,例如成本问题和缩短传感器制备过程中涉及的长实验室合成途径。此外,这些聚合材料中的一些对动植物的毒理学影响还没有得到很好的研究。鉴于这些缺点,现在的努力方向是引入低成本的生物材料,作为开发新型电化学传感器和生物传感器的替代品。本综述重点介绍了基于不同聚合材料的电化学传感器和生物传感器的最新研究进展。讨论了在传感过程中,这些聚合材料和纳米复合材料在电极上结合时的协同作用。