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Green synthesis of zinc sulfide nanoparticles-organic heterocyclic polyol system as eco-friendly anti corrosion and anti-bacterial corrosion inhibitor for steel in acidic environment

Reda Abdel‐HameedBasic Science Department, Preparatory Year, University of Ha’il, Hail, Saudi ArabiaMohamad FarideBasic Science Department, Preparatory Year, University of Ha’il, Hail, Saudi ArabiaMohamed S. OthmanBasic Science Department, Preparatory Year, University of Ha’il, Hail, Saudi ArabiaBader HuwaimelDepartment of Pharmaceutical Chemistry, College of Pharmacy, University of Ha’il, Hail, Saudi ArabiaSaedah R. Al‐MhyawiDepartment of Chemistry, Faculty of Science, University of Jeddah, Jeddah, Saudi ArabiaAhmed H. ShamroukhPhotochemistry Department, National Research Center, Dokki, Cairo, EgyptFreah AlshammaryDepartment of Preventive Dental Sciences, College of Dentistry, University of Ha’il, Hail, Saudi ArabiaEnas AljuhaniChemistry Department, Faculty of Applied Science, Umm Al-Qura University, Makkah, Saudi ArabiaM. AbdallahChemistry Department, Faculty of Applied Science, Umm Al-Qura University, Makkah, Saudi Arabia
2022en
ABI

Аннотация

Green synthesis, characterization and evaluation of nanoscale zinc sulfide (ZnS) by precipitation chemical method. The zinc sulfide nanoparticles were prepared by chemical precipitation method using heterocyclic polyvinyl alcohol, PVA as a sensitizer. The prepared heterocyclic compounds system ZnS nanoparticles, PVA, EG were used as anti-bacterial corrosion towards sulfate-reducing bacteria (SRB) and anti-corrosion for carbon steel substrate in sulfuric acid and hydrogen sulfide bacterial corrosive environment using chemical, analytical, and electrochemical techniques. Effect of adding PVA, and ethylene glycol, EG to ZnS nanoparticles were studied. Effect of ZnS nanoparticles concentrations and the reaction temperature on the corrosion inhibition efficiency were studied. The inhibition due to adsorption of nanoparticles on steel surface, the adsorption agree well with Langmuir isotherm with suggested chemical adsorption mechanism. Potentiodynamic polarization (PD) and Electrochemical impedance spectroscopy (EIS) data explain that the used inhibitor is mixed-type and improves polarization resistance and inhibition performance by adhering to metal/electrolyte interface. The cathodic and anodic reactions are delayed when inhibitor molecules are added to an aggressive medium, which results in a negative shift in the open circuit potential. Addition of both PVA, and EG as organic polyol materials enhance the adsorption and inhibition properties of zinc sulfide nanoparticles on steel surface.

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