Karthik V, Selvakumar P, Senthil Kumar P, Satheeskumar V, Godwin Vijaysunder M, Hariharan S, Antony K
Department of Industrial Biotechnology, Government College of Technology, Coimbatore, 641013, India.
Department of Chemical Engineering, School of Mechanical, Chemical and Materials Engineering, Adama Science and Technology University, Adama, 1888, Ethiopia.
Chemosphere. 2022 Oct;304:135331. doi: 10.1016/j.chemosphere.2022.135331. Epub 2022 Jun 13.
In the latest times, considerable studies have been performed closer to detecting emerging pollutant such as paracetamol in wastewater. Electrochemical sensor developments have recently started to determine in fewer concentrations effectively. The detection of paracetamol using standard protocols corresponding to electroanalytical techniques has a greater impact noticed in directing the detecting process toward biosensors. Non-enzymatic sensors are the peak of all electro analysis approaches. Functionalized materials, such as metal oxide nanoparticles, conducting polymers, and carbon-based materials for electrode surface functionalization have been used to create a fortification for distributing passive enzyme-free biosensors. Synergic effects are possible by enhancing loading capacity and mass transfer of reactants for attaining high analytical sensitivity using a variety of nanomaterials with large surface areas. The main focus of this study is to address the prevailing issues in the identification of paracetamol with the tasks in the non-enzymatic sensors field, followed by the useful methods of electro analysis studies.
近年来,人们进行了大量研究,以更接近地检测废水中的新兴污染物,如对乙酰氨基酚。电化学传感器的开发最近已开始能够有效地检测更低的浓度。使用与电分析技术相应的标准方案检测对乙酰氨基酚,在将检测过程导向生物传感器方面产生了更大的影响。非酶传感器是所有电分析方法的巅峰。功能化材料,如用于电极表面功能化的金属氧化物纳米颗粒、导电聚合物和碳基材料,已被用于制造强化材料,以分布无源无酶生物传感器。通过使用各种具有大表面积的纳米材料提高反应物的负载能力和传质,可以实现协同效应,以获得高分析灵敏度。本研究的主要重点是解决非酶传感器领域中对乙酰氨基酚识别方面存在的问题,以及电分析研究的有用方法。