Chemical Sciences & Technology Division (CSTD), CSIR-National Institute for Interdisciplinary Science & Technology (CSIR-NIIST), Trivandrum 695019, India.
Analyst. 2013 Sep 7;138(17):5031-8. doi: 10.1039/c3an00518f. Epub 2013 Jul 3.
A novel gold atomic cluster-poly(3,4-ethylenedioxythiophene) (AuAC/PEDOT/Au) nanocomposite modified gold electrode has been designed for the trace level sensing of catechol. The addition of copper(II) enhanced the electro-catalytic oxidation of catechol via the formation of copper(I). The electrochemically synthesized PEDOT/Au and the AuAC/PEDOT/Au hybrid films were characterized by electrochemical and morphological methods. Under optimal conditions the nanocomposite modified electrode offers a wider calibration range of 1 × 10(-4) to 10 μM with a lowest detection limit of 6.3 pM for catechol. Moreover, the developed electrochemical sensor exhibited good selectivity and acceptable reproducibility (1.23% for 1 nM of catechol) and could be used for the routine detection and quantification of catechol in natural water samples. To gain a better understanding of such an excellent sensor performance achieved with this electrode, studies were undertaken to pinpoint electrode kinetics of charge transfer processes.
一种新型的金原子簇-聚(3,4-乙撑二氧噻吩)(AuAC/PEDOT/Au)纳米复合材料修饰的金电极已被设计用于痕量儿茶酚的传感。铜(II)的加入通过形成铜(I)增强了儿茶酚的电催化氧化。通过电化学和形态学方法对电合成的 PEDOT/Au 和 AuAC/PEDOT/Au 杂化膜进行了表征。在最佳条件下,纳米复合材料修饰电极提供了更宽的校准范围,从 1×10(-4)到 10 μM,儿茶酚的最低检测限为 6.3 pM。此外,所开发的电化学传感器表现出良好的选择性和可接受的重现性(1 nM 儿茶酚的重现性为 1.23%),可用于天然水样中儿茶酚的常规检测和定量。为了更好地理解这种电极实现的优异传感器性能,进行了研究以确定电荷转移过程的电极动力学。