A non-enzymatic electrochemical biosensor for the detection of formalin levels in fishes: Realization of a novel comparator effect based on electrolyte.

Anal Chim Acta

Centre for Nanotechnology & Advanced Biomaterials (CeNTAB), SASTRA Deemed University, Thanjavur, 613 401, Tamil Nadu, India; School of Electrical & Electronics Engineering, SASTRA Deemed University, Thanjavur, 613 401, Tamil Nadu, India. Electronic address:

Published: December 2020

Formalin has been used as the preservative of fishes in the concentration range of 15-25 mgL. However, there have been a high frequency of violations in the optimum use of formalin levels. The consumption of fishes treated with excessive formalin levels leads to nasopharynx, leukaemia and sinonasal cancer and there is a huge demand for the development of formalin sensor. Conventional formalin sensors such as chromogenic and mass balance sensors fall short in real-time analysis due to the lack of specificity and sensitivity in the interference medium. In this context, it has been emphasized to develop a non-enzymatic electrochemical biosensor with microwave synthesized CdS nanoparticles as a nanointerface owing to its surface limited kinetics. NaCl of 1 mM was considered as an electrolyte solution in the present study. Dynamic sensing characteristics with varying formalin levels of 5-50 mgL was studied in three different concentration ranges as 5-15 mgL (concentration of formalin < NaCl; conversion of formalin to formic acid), 20-30 mgL (concentration of formalin ∼ NaCl; equilibrium between the oxidative and reductive product), 35-50 mgL (concentration of formalin > NaCl; complete oxidation of formic acid to CO). Hence, with the exhibition of such a dynamic sensitivity based on electrolyte, the developed biosensor acts as an electrochemical comparator showcasing a switch-like behaviour in detecting formalin levels. The threshold concentration of formalin required for the comparator effect was found to be 14.845 mgL. The developed biosensor, most essentially, exhibited a versatility in quantifying formalin levels in real-time fish samples.

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http://dx.doi.org/10.1016/j.aca.2020.09.035DOI Listing

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