Laboratory of Valorization and Promotion of Saharian Ressources (VPSR), Kasdi-Merbah University, Ouargla, Algeria.
Crit Rev Anal Chem. 2024 Aug;54(5):1354-1367. doi: 10.1080/10408347.2022.2114784. Epub 2022 Aug 25.
Because of their unique physical, chemical, and biological characteristics, conductive nanomaterials have a lot of potential for applications in materials science, energy storage, environmental science, biomedicine, sensors/biosensors, and other fields. Recent breakthroughs in the manufacture of carbon materials, conductive polymers, metals, and metal oxide nanoparticles based electrochemical sensors and biosensors for applications in environmental monitoring by detection of catechol (CC) and hydroquinone (HQ) are presented in this review. To achieve this goal, we first introduced recent works that discuss the effects of phenolic compounds and the need for accurate, inexpensive, and quick monitoring, and then we focused on the use of the most important applications of nanomaterials, such as carbon-based materials, metals, and metal oxides nanoparticles, and conductive polymers, to develop sensors to monitor catechol and hydroquinone. Finally, we identified challenges and limits in the field of sensors and biosensors, as well as possibilities and recommendations for developing the field for better future applications. Meanwhile, electrochemical sensors and biosensors for catechol and hydroquinone measurement and monitoring were highlighted and discussed particularly. This review, we feel, will aid in the promotion of nanomaterials for the development of innovative electrical sensors and nanodevices for environmental monitoring.
由于导电纳米材料具有独特的物理、化学和生物学特性,因此在材料科学、储能、环境科学、生物医学、传感器/生物传感器等领域具有很大的应用潜力。本综述介绍了基于电化学传感器和生物传感器的碳材料、导电聚合物、金属和金属氧化物纳米粒子制造方面的最新突破,这些传感器和生物传感器可用于环境监测,以检测儿茶酚(CC)和对苯二酚(HQ)。为了实现这一目标,我们首先介绍了最近讨论酚类化合物的影响以及对准确、廉价和快速监测的需求的工作,然后我们专注于使用最重要的纳米材料应用,如基于碳的材料、金属和金属氧化物纳米粒子以及导电聚合物,开发用于监测儿茶酚和对苯二酚的传感器。最后,我们确定了传感器和生物传感器领域的挑战和限制,以及为了更好的未来应用而开发该领域的可能性和建议。同时,特别强调和讨论了用于儿茶酚和对苯二酚测量和监测的电化学传感器和生物传感器。我们认为,这篇综述将有助于促进纳米材料的发展,用于开发用于环境监测的创新电气传感器和纳米器件。