Synergetic effects of a poly-tartrazine/CTAB modified carbon paste electrode sensor towards simultaneous and interference-free determination of benzenediol isomers

Literature Information

Publication Date 2023-08-24
DOI 10.1039/D3RE00318C
Impact Factor 4.239
Authors

Amit B. Teradale, Kailash S. Chadchan, Pattan-Siddappa Ganesh, Swastika N. Das


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Abstract

Dihydroxybenzene (DHB) isomers like catechol (CC), hydroquinone (HQ), and resorcinol (RC) pose a significant threat to human health and the environment due to their persistence and ability to cause harm to vital organs. Detecting these chemicals can be challenging because they have similar properties and structures, and they coexist in the environment. This study introduces a novel approach in the field by developing a modified carbon paste electrode called poly-tartrazine/cetyl trimethyl ammonium bromide/modified carbon paste electrode (poly-TZ/CTAB/MCPE). The electrode was created by polymerizing tartrazine (TZ) onto the carbon paste electrode (CPE) surface, followed by the application of cetyl trimethyl ammonium bromide (CTAB) solution. The incorporation of TZ and CTAB onto the CPE surface resulted in enhanced sensitivity for detecting dihydroxy benzene isomers. By utilizing cyclic voltammetry (CV) and differential pulse voltammetry (DPV) techniques, our modified electrode successfully detected and distinguished each of the three isomers individually and simultaneously. The peaks obtained were well-defined, and there were adequate potential differences between each peak. The detection limits for CC, HQ and RC were found to be 0.495 × 10−6 M, 0.41 × 10−6 M and 2.2 × 10−6 M, respectively. This modified electrode exhibited selectivity, reproducibility, and repeatability properties. Unlike previous research, our study delves into the combined interactions between CTAB and tartrazine, specifically with the dihydroxy benzene isomers.

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Reaction Chemistry & Engineering

Reaction Chemistry & Engineering
CiteScore: 0
Self-citation Rate: 8.8%
Articles per Year: 284

Reaction Chemistry & Engineering is an interdisciplinary journal reporting cutting-edge research focused on enhancing the understanding and efficiency of reactions. Reaction engineering leverages the interface where fundamental molecular chemistry meets chemical engineering and technology. Challenges in chemistry can be overcome by the application of new technologies, while engineers may find improved solutions for process development from the latest developments in reaction chemistry. Reaction Chemistry & Engineering is a unique forum for researchers whose interests span the broad areas of chemical engineering and chemical sciences to come together in solving problems of importance to wider society. All papers should be written to be approachable by readers across the engineering and chemical sciences. Papers that consider multiple scales, from the laboratory up to and including plant scale, are particularly encouraged.

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