DEVELOPMENT AND CHARACTERIZATION OF SOLID CU / CUSO4 REFERENCE ELECTRODES

Marysca Shintya Dewi, Sagir Alva, Wan Adil Wan Jamil

Abstract


In this research, a solid Cu/CuSO4 reference electrode has been developed. In this development process, the Cu/CuSO4 solid reference electrode provided consists of two types, namely the Cu/CuSO4 I solid reference electrode (ERP Cu/CuSO4 I) and the Cu/CuSO4 II solid reference electrode (ERP Cu/CuSO4 II). ERP Cu/CuSO4 I was prepared using two layers, namely the Cu/CuSO4 layer and the cellulose acetate layer which were placed sequentially on the surface of the planar type Cu electrode. Meanwhile, ERP Cu/CuSO4 II was prepared using three layers, namely a layer of cotton fiber/cellulose acetate, a layer of Cu/CuSO4, and a layer of cotton/cellulose acetate placed in sequence on the surface of the planar type Cu electrode, where the CuSO4 layer is between the two layers of cotton/cellulose acetate. Both types of Cu/CuSO4 solid reference electrodes were characterized by testing DmV in various concentrations of KCl solution and ERP Cu/CuSO4 II has been produced as the best reference electrode for Cu/CuSO4 solids with a DmV value of 3.3 mV. Furthermore, ERP Cu/CuSO4 II was selected for characterization using cyclic voltammetry (CV) testing, response vs Cl sensor testing, and drif testing. In CV testing, ERP Cu/CuSO4 provides a voltammogram graph pattern similar to the Ag/AgCl reference electrode as a commercial reference electrode. Meanwhile, in testing the response vs sensor Cl, ERP Cu/CuSO4 II gave a Nernstian number value  of -50.1 mV/decade with a test range of 0.1-10-3M. ERP Cu/CuSO4 II showed fairly good stability, namely with a drift value of 0.46 mV/minute which is achieved after the conditioning process after 12 minutes.


Keywords


Reference Electrodes; Solids Electrodes; Electrochemical Cells; Ag/AgCl; Cu/CuSO4

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References


S. Alva, A. Widinugroho, M. Adrian, D. S. Khaerudini, S. E. Pratiwi, and A. S. A. Aziz, “The New Lead (II) Ion Selective Electrode Based On Free Plasticizer Film of pTHFA Photopolymer,” J. Electrochem. Soc., vol. 166, no. 15, pp. B1513–B1519, 2019

S. Alva, R. Suherman, V. Friliandita, D. S. Khaerudini, E. H. Majlan, and A. S. A. Aziz, “Preliminary study of poly(Tetrahydrofurfuryl acrylate) thin film as a potential material of ion selective electrodes: The case of nitrate ion-selective electrode,” Indones. J. Chem., vol. 20, no. 3, pp. 645–654, 2020

S. Alva,, E. Hindasah, W.A.W. Jamil, T. Prasetyorini, ”Development of Integrated Planar Chloride Ion-Selective Electrode and Ag/AgCl Reference Electrode based on Chitosan/Cellulose Acetate Membrane for Blood Serum Analysis, “Anal. Bioanal. Electrochem., vol. 11, no. 12, pp. 1669-1686, 2019

A. Sudarvizhi, K. Pandian, O. S. Oluwafemi, and S. C. B. Gopinath, “Amperometry detection of nitrite in food samples using tetrasulfonated copper phthalocyanine modified glassy carbon electrode,” Sensors Actuators, B Chem., vol. 272, pp. 151–159, 2018

A. Izadyar, F. Al-Amoody, and D. R. Arachchige, “Ion transfer stripping voltammetry to detect nanomolar concentrations of Cr (VI) in drinking water,” J. Electroanal. Chem., vol. 782, pp. 43–49, 2016

V. Maruthapandian, V. Saraswathy, and S. Muralidharan, “Development of solid state embeddable reference electrode for corrosion monitoring of steel in reinforced concrete structures,” Cem. Concr. Compos., vol. 74, pp. 100–108, 2016

S. Liang and C. C. Zeng, “Organic electrochemistry: Anodic construction of heterocyclic structures,” Curr. Opin. Electrochem., vol. 24, pp. 31–43, 2020

P. Huang and Y. Zhang, “Electrodeposition of nickel coating in choline chloride-urea deep eutectic solvent,” Int. J. Electrochem. Sci., vol. 13, no. 11, pp. 10798–10808, 2018

R. F. Wright, P. Lu, J. Devkota, F. Lu, M. Ziomek-Moroz, and P. R. Ohodnicki, “Corrosion sensors for structural health monitoring of oil and natural gas infrastructure: A review,” Sensors , vol. 19, no. 18, 2019

S. Alva, D. Ardiyansyah, D. S. Khaerudini, and R. Suherman, “Solid-State Reference Electrode Based on Thin-Films of Tetrahydrofurfuryl Acrylate (pTHFA) Photopolymer,” J. Electrochem. Soc., vol. 166, no. 8, pp. B598–B603, 2019

S. Alva, A. Aziz, M. I. Syono, and D. Sebayang, “Development of solid-state reference electrode based on sodium polyanethol sulfonate immobilised on cellulose acetate,” J. Phys. Sci., vol. 28, no. 2, pp. 161–179, 2017

H. A. G. Stern, D. R. Sadoway, and J. W. Tester, “Copper sulfate reference electrode,” J. Electroanal. Chem., vol. 659, no. 2, pp. 143–150, 2011

S. Szabó and I. Bakos, “Reference electrodes in metal corrosion,” Int. J. Corros., vol. 2010, 2010

D. M. Hall, J. R. Beck, E. Brand, M. Ziomek-Moroz, and S. N. Lvov, “Copper-Copper Sulfate Reference Electrode for Operating in High Temperature and High Pressure Aqueous Environments,” Electrochim. Acta, vol. 221, pp. 96–106, 2016

B.Y. Pirogov, and A.G. Zelinsky, “Numerical simulation of electrode process in Cu/CuSO4 + H2SO4 system,” Electrochim. Acta, vol. 49, pp. 3283–3292, 2004.

S. Alva, A. S. Binti Abdul Aziz, M. I. Bin Syono, and W. A. Bin Wan Jamil, “Ag/AgCl reference electrode based on thin film of arabic gum membrane,” Indones. J. Chem., vol. 18, no. 3, pp. 479–485, 2018

S. Alva, L. Y. Heng, and M. Ahmad, “Optimization of Screen Printed Reference Electrode Based on Charge Balance and Poly (Butyl Acrylate) Photocurable Mebrane,” Int. J. Innov. Mech. Eng. Adv. Mater., vol. 2, no. 1, p. 10, 2016

S .Ebrahimi and D. J. Roberts," Bioregeneration of single use nitrate selective ion-exchange resin enclosed in a membrane: Kinetics of desorption," Sep. Purif. Technol., vol.146, pp.268-275, 2015

S. Sethuraman and K. Rajendran, “Is Gum Arabic a Good Emulsifier Due to CH...π Interactions? How Urea Effectively Destabilizes the Hydrophobic CH...π Interactions in the Proteins of Gum Arabic than Amides and GuHCl?,” ACS Omega, vol. 4, no. 15, pp. 16418–16428, 2019

B. Singh, S. Sharma, and A. Dhiman, “Acacia gum polysaccharide based hydrogel wound dressings: Synthesis, characterization, drug delivery and biomedical properties,” Carbohydr. Polym., vol. 165, pp. 294–303, 2017

I. G. A. Arwati et al., “Kesan Pemendapan Elektroforesis Gam Arab terhadap Halaju Kakisan pada Aluminium 5052,” Sains Malaysiana, vol. 48, no. 2, pp. 401–406, 2019, doi: 10.17576/jsm-2019-4802-18.

N. Elgrishi, K. J. Rountree, B. D. McCarthy, E. S. Rountree, T. T. Eisenhart, and J. L. Dempsey, “A Practical Beginner’s Guide to Cyclic Voltammetry,” J. Chem. Educ., vol. 95, no. 2, pp. 197–206, 2018

D. S. Khaerudini, F. Rahman, and S. Alva, “Optimization strategy of Ag/AgCl thin film electrodes approached by chlorination process for electrochemical response materials,” Mater. Chem. Phys., vol. 240, no. 1, p. 122294, 2020

K.S. Ying, L.Y Heng, N.I. Hassanan, S.A. Hasbullah,” A New and All-Solid-State Potentiometric Aluminium Ion Sensor for Water Analysis,” Sensors vol. 20, pp. 6898, 2020.




DOI: http://dx.doi.org/10.22441/ijimeam.v3i1.11607

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