PROTECTIVE WASTE: INNOVATION IN ANTI-CORROSION PAINT BASED ON CUCUMBER PEEL WASTE AND TEA POWDER
DOI:
https://doi.org/10.32477/semnas.v4i1.1326Keywords:
Corrosion, Ecoguard, Cucumber Peel Waste, Tea Powder Extract, Natural Corrosion Inhibitor.Abstract
Corrosion is a serious problem that can reduce the service life of materials, increase maintenance costs, and reduce the safety level of various construction systems. On the other hand, Indonesia still faces challenges in managing organic waste such as cucumber peels and tea powder that have not been optimally utilized. This research offers an innovative idea in the form of EcoGuard, an anti-corrosion paint based on active extracts from cucumber peel and tea powder waste as an environmentally friendly coating material. The method used is a literature study through searching various scientific publications related to the characteristics of active compounds in cucumber peel and tea powder waste, coating paint formulation, and corrosion resistance testing on metal materials. The results of the literature review show that the antioxidant content, polyphenols, and other organic compounds inboth wastes have the potential to act as natural corrosion inhibitors. This potential utilization is expected to slow down the corrosion rate by tens of percent compared to conventional coatings based on chemicals or heavy metals. This innovation contributes to improving material maintenance efficiency while presenting an environmentally friendly waste-to-product approach. As such, EcoGuard has the potential to become a sustainable coating technologysupporting the achievement of SDG 9 (Industry, Innovation, and Infrastructure), SDG 12(Responsible Consumption and Production), and SDG 13 (Climate Action).
References
Ariestya, V., & Nugroho, A. F. (2021). Pemanfaatan limbah teh celup sebagai bahan baku pembuatan adsorben ramah lingkungan. Jurnal Teknologi Lingkungan, 22(1), 45–52.
Bahri, H., Arifin, Z., & Suharno, B. (2015). Influence of nano-silica content on potassium silicate coating for 2024 aluminum alloy. Journal of Materials Engineering and Performance, 24(3), 1103–1112.
Chowdhury, S., Mazumder, M. A., & Al-Attas, O. (2019). Green corrosion inhibitors based on plant extracts: A review of present trends and future prospects. Journal of Cleaner Production, 231, 1100–1113.
EPA. (1973). Health hazards of hexavalent chromium. United States Environmental Protection Agency.
Fitriani, R., Sari, P., & Rahayu, N. (2020). Extraction of silica from agricultural waste for functional material applications: A review. Materials Today: Proceedings, 22, 167–172.
Hossain, M., Rahman, M., & Hasan, M. (2020). Vegetable-waste-derived antioxidants for improving polymer coating stability. Surface & Coatings Technology, 392, 125709.
Hussain, H., & Bakar, M. A. (2023). Biomass-derived green corrosion inhibitors: A sustainable alternative to toxic coatings. Renewable and Sustainable Energy Reviews, 173, 113085.
International Air Transport Association. (2023). Aircraft maintenance cost report 2023. IATA Publications.
Khan, G., Singh, A., & Quraishi, M. A. (2016). A green approach: Tea leaves extract as a novel corrosion inhibitor for mild steel in acidic medium. Journal of Materials Research and Technology, 5(4), 406–418.
Khakzad, M., Aliofkhazraei, M., & Darband, G. B. (2017). Plasma electrolytic oxidation coatings on aluminum and magnesium alloys: Microstructure, defects, and corrosion resistance. Surface & Coatings Technology, 309, 456–477.
Kumar, R., Prasad, D., & Yadav, M. (2018). Tea waste-derived silica and its application as eco-friendly corrosion inhibitor. Journal of Molecular Liquids, 265, 612–624.
Melchers, R. E., & Chaves, I. A. (2020). Corrosion analysis of structural steels in infrastructure. CRC Press.
Ministry of Energy and Mineral Resources of Indonesia. (2021). Roadmap Net Zero Emission 2060. Kementerian ESDM.
NACE International. (2012). International measures of prevention, application, and economics of corrosion technologies (IMPACT). NACE Press.
Ahmad, Z. (2016). Principles of corrosion engineering and corrosion control. Butterworth-Heinemann.
ASTM International. (2020). ASTM B117-19: Standard practice for operating salt spray (fog) apparatus. ASTM International.
Baskar, G., & Aiswarya, R. (2019). Utilization of agricultural waste for sustainable material development: A review. Journal of Environmental Chemical Engineering, 7(4), 103281.
Dwivedi, D., Lepková, K., & Becker, T. (2017). Carbon steel corrosion: A review of key factors influencing corrosion mechanisms. RSC Advances, 7(8), 4580–4610.
El-Lateef, H. M. A. (2020). Green corrosion inhibitors based on plant extracts for protection of metals. Journal of Molecular Liquids, 321, 114918.
Fontana, M. G. (2017). Corrosion engineering (4th ed.). McGraw-Hill Education.
ISO. (2018). ISO 12944: Paints and varnishes — Corrosion protection of steel structures by protective paint systems. International Organization for Standardization.
Junaidi, M., Prasetyo, E. E., & Santoso, D. (2021). Potensi material berbasis biomassa sebagai coating ramah lingkungan untuk industri konstruksi. Jurnal Material dan Proses Manufaktur, 5(2), 85–94.
Karthik, R., Kumar, S., & Kumar, P. (2020). Agricultural waste-derived silica nanoparticles for sustainable coating applications. Materials Today: Proceedings, 33, 2950–2955.
Li, X., Deng, S., & Fu, H. (2012). Synergistic inhibition effect of rare earth compounds and organic inhibitors on steel corrosion. Corrosion Science, 62, 163–175.
Liu, Y., Zhang, D., & Li, X. (2019). Organic–inorganic hybrid coatings for corrosion protection: A review. Progress in Organic Coatings, 127, 282–297.
Mansfeld, F. (2018). Electrochemical methods of corrosion testing. Springer.
Nandiyanto, A. B. D., Oktiani, R., & Ragadhita, R. (2019). How to read and interpret FTIR spectroscope of organic material. Indonesian Journal of Science and Technology, 4(1), 97–118.
Olajire, A. A. (2018). Corrosion inhibition of aluminum and its alloys: A review. Journal of Molecular Liquids, 269, 298–313.
Rani, B. E. A., & Basu, B. B. J. (2012). Green inhibitors for corrosion protection of metals and alloys: An overview. International Journal of Corrosion, 2012, 380217.
Shukla, S. K., & Quraishi, M. A. (2017). Plant-derived corrosion inhibitors for sustainable corrosion protection. Journal of Materials and Environmental Science, 8(9), 3307–3323.
Sulaiman, N., & Prasetyo, E. E. (2022). Pengembangan material pelapis berbasis limbah organik untuk konstruksi berkelanjutan. Jurnal Rekayasa Material, 14(1), 11–20.
United Nations. (2015). Transforming our world: The 2030 Agenda for Sustainable Development. United Nations.
Verma, C., Ebenso, E. E., & Quraishi, M. A. (2018). Ionic liquids as green corrosion inhibitors for metals and alloys. Journal of Molecular Liquids, 266, 577–590.
Zhang, X., Wang, F., & Zhang, Y. (2021). Sustainable anti-corrosion coatings derived from biomass resources. Coatings, 11(9), 1098.



