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Highly sensitive and simultaneous determination of hydroquinone and catechol at poly(thionine) modified glassy carbon electrode
Authors:A.J. Saleh Ahammad  Md. Mahbubur Rahman  Guang-Ri Xu  Sunghyun Kim  Jae-Joon Lee
Affiliation:aDepartment of Advanced Technology Fusion, Konkuk University, Seoul 143-701, Republic of Korea;bHenan Institute of Science and Technology, Xinxiang 453003, China;cDepartment of Bioscience and Biotechnology, Konkuk University, Seoul 143-701, Republic of Korea;dDepartment of Applied Chemistry, Konkuk University, Chungju 380-701, Republic of Korea
Abstract:A simple and highly sensitive electrochemical method for the simultaneous and quantitative detection of hydroquinone (HQ) and catechol (CT) was developed, based on a poly(thionine)-modified glassy carbon electrode (GCE). The modified electrode showed excellent electrocatalytic activity and reversibility towards the oxidation of both HQ and CT in 0.1 M phosphate buffer solution (PBS, pH 7.0). The peak-to-peak separations (ΔEp) between oxidation and reduction waves in CV were decreased significantly from 262 and 204 mV at the bare GCE, to 63 and 56 mV, respectively for HQ and CT at the poly(thionine) modified GCE. Furthermore, the redox responses from the mixture of HQ and CT were easily resolved in both CV and DPV due to a difference in the catalytic activity of the modified GCE to each component. The peak potential separation of ca. 0.1 V was large enough for the simultaneous determination of HQ and CT electrochemically. The oxidation peak currents of HQ and CT were linear over the range from 1 to 120 μM in the presence of 100 and 200 μM of HQ and CT, respectively. The modified electrode showed very high sensitivity of 1.8 and 1.2 μA μM−1 cm−2 for HQ and CT, respectively. The detection limits (S/N = 3) for HQ and CT were 30 and 25 nM, respectively. The developed sensor was successfully examined for real sample analysis with tap water and revealed stable and reliable recovery data.
Keywords:Simultaneous detection   Poly(thionine)   Hydroquinone   Catechol   Differential pulse voltammetry
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