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Research Article | Open Access

Electrochemical Effect of Ascorbic Acid on Redox Current Peaks of CoCl2 in Blood Medium

Muhammed Mizher Radhi1,2( )Hanaa Naji Abdullah1,2Majid Sakhi Jabir3Emad Abbas Jaffar Al-Mulla4( )
Department of Radiological Techniques, Health and Medical Technology College, Middle Technical University, Baghdad, Iraq
Analytical Technical Lab, Health and Medical Technology College, Middle Technical University, Baghdad, Iraq
Department of Applied Science, University of Technology, Baghdad, Iraq
Department of Chemistry, Faculty of Science, University of Kufa, P.O. Box 21, An-Najaf 54001, Iraq
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Abstract

Cyclic voltammetric technique using glassy carbon electrode of cobalt chloride Co(Ⅱ) was studied in blood medium for the effect of ascorbic acid as an electrocatalyst reagent on the oxidation reduction current peaks of Co(Ⅱ). It was found that the two oxidation reduction current peaks for Co(Ⅱ) in 0.1M KCl as electrolyte were at 900 and 250 mV respectively. In the study of Co(Ⅱ) in blood medium the result was different, in that the reduction current peak disappeared and the oxidation current peak shifted to a higher potential at 1.4 V. The other study for the effects of different concentrations of ascorbic acid on the anodic current peak of Co(Ⅱ) in blood medium showed an enhancement of the oxidation current peak about three times and the ascorbic acid acted as an electrocatalyst in blood components which caused damage to blood cells.

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Nano Biomedicine and Engineering
Pages 103-106
Cite this article:
Radhi MM, Abdullah HN, Jabir MS, et al. Electrochemical Effect of Ascorbic Acid on Redox Current Peaks of CoCl2 in Blood Medium. Nano Biomedicine and Engineering, 2017, 9(2): 103-106. https://doi.org/10.5101/nbe.v9i2.p103-106

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Received: 11 April 2017
Accepted: 26 April 2017
Published: 03 May 2017
© 2017 Muhammed Mizher Radhi, Hanaa Naji Abdullah, Majid Sakhi Jabir, and Emad Abbas Jaffar Al-Mulla.

This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

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