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Application of the Optimization Technique in Analytical and Electrochemistry for the Anticorrosive and Complexing Activity of 2,4-Dihydroxyacetophenone Benzoylhydrazone

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Mobile Radio Communications and 5G Networks

Part of the book series: Lecture Notes in Networks and Systems ((LNNS,volume 140))

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Abstract

2,4-Dihydroxyacetophenone benzoylhydrazone (DHABH) collectively has been used for the anticorrosive activity towards soft cast steel and as a complexing agent for formation of a coordination complex with tungsten (VI). The corrosion inhibition properties of the reagent are examined in acidic medium at variable concentrations and temperatures utilizing different techniques like gravimetric and electrochemical including polarization measurements and electrochemical impedance spectroscopy (EIS) and quantum chemical calculations. It has been found from the study that inhibition potency increased with increasing concentration of DHABH as indicated by weight loss measurement, polarization curves and EIS studies. However, the complexation conduct of the reagent with tungsten (VI) to form 1:3; W(VI): DHABH complex is studied spectrophotometrically. The produced method of determination has been observed to be exceedingly sensitive, selective, quick, reproducible and satisfactorily pertinent to a wide variety of technical and synthetic samples.

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Acknowledgements

Sincere thanks are due to the authorities, MMDU, Mullana; UIET, KU, Kurukshetra; and DCRUST, Murthal, for providing the required facilities.

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Correspondence to Nivedita Agnihotri .

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Kaur, N., Agnihotri, N., Nain, S., Kumar, R., Agnihotri, R. (2021). Application of the Optimization Technique in Analytical and Electrochemistry for the Anticorrosive and Complexing Activity of 2,4-Dihydroxyacetophenone Benzoylhydrazone. In: Marriwala, N., Tripathi, C.C., Kumar, D., Jain, S. (eds) Mobile Radio Communications and 5G Networks. Lecture Notes in Networks and Systems, vol 140. Springer, Singapore. https://doi.org/10.1007/978-981-15-7130-5_21

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  • DOI: https://doi.org/10.1007/978-981-15-7130-5_21

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