Characterization of Cocoyam Peels Biochar for Remediation of Crude Oil Polluted Soils

Authors

  • Ngozi Jane Maduelosi Department of Chemistry, Faculty of Science, Rivers State University Nkpolu Oroworukwo, Port Harcourt, Nigeria. Author
  • May Nwamaka Ighomuaye Department of Chemistry, Faculty of Science, Rivers State University Nkpolu Oroworukwo, Port Harcourt, Nigeria. Author
  • Emeka Emmanuel Joseph Department of Chemistry, Faculty of Science, Hezekiah University, Umudi, Imo State, Nigeria. Author

DOI:

https://doi.org/10.60787/ijrti.vol3no1.80

Keywords:

Adsorbent, Toxic, Parameters, Elements, Contaminated, Characterized

Abstract

Soil contamination is a growing environmental concern in Nigeria due to industrial, agricultural, and mining activities and this has posed serious ecological and health risks, yet conventional remediation methods remain costly and unsustainable. This study is significant because it provides a cost-effective and sustainable approach to tackling soil contamination by transforming cocoyam peels, an underutilized agricultural waste, into biochar for remediation purposes. In this study, cocoyam peels biochar (adsorbent) was produced and characterized using Scanning Electron Microscopy (SEM) and Fourier Transform Infrared Spectrometer (FTIR). 10.0 g of the adsorbent was applied to 1000 g of crude oil-polluted soil. The physicochemical properties of the soil before and after remediation were determined using a multimeter. The FTIR result revealed the presence of the C=O, C–H, O=C=O, OH, and C=C functional groups. SEM showed a porous microstructure with well-developed cavities and micropores, providing an extensive surface area for pollutant binding. Results of physicochemical parameters obtained were; pH 5.8, Electrical conductivity (EC) 2144 µS/cm, ambient temperature 29.0 °C, and Total dissolved solids (TDS) 1132 mg/L. Cocoyam peels biochar increased the activities of indigenous microbes which in turn reduced Total Petroleum Hydrocarbon (TPH) to 50% thereby making it a promising, cost-effective, and sustainable material for the immobilization of pollutants in contaminated soils.

Downloads

Download data is not yet available.

References

Zhang, Z., Han, J., Zhang, Y., Sun, Y., Sun, Z. & Liu, Z. (2023). Connotation, status, and governance of land ecological security in China’s new urbanization: Recent advances and prospects. Environmental Science and Pollution Research, 30, 119654–119670.

Liu, X., Sathishkumar, K., Zhang, H., Saxena, K. K., Zhang, F. & Naraginiti, S. (2024). Frontiers in environmental cleanup: Recent advances in remediation of emerging pollutants from soil and water. Journal of Hazardous Materials Advances, 16, 100461. https://doi.org/10.1016/j.hazadv.2024.100461

Biswas, B., Qi, F., Biswas, J. K., Wijayawardena, A., Khan, M. A. I. & Naidu, R. (2018). The fate of chemical pollutants with soil properties and processes in the climate change paradigm. A review. Soil Systems, 2(3), 51. https://doi.org/10.3390/soilsystems2030051

Cheng, S., Chen, T., Xu, W., Huang, J., Jiang, S. & Yan, B. (2020). Application research of biochar for the remediation of soil heavy metals contamination: A review. Molecules, 25(14), 3167. https://doi.org/10.3390/molecules25143167

Ohuoba, A. N., Onwuka, G. I. & Omodamiro, R. M. (2019). Effects of drying methods on physico-chemical properties of hydrocolloids isolated from peel flour of some selected root and tuber crops. International Journal of Biochemistry Research & Review, 27(1), 1–8.

Daza-Orsini, S. M., Medina-Jaramillo, C. & López-Córdoba, A. (2025). Physicochemical characterization of starch and cellulose nanofibers extracted from Colocasia esculenta cultivated in the Colombian Caribbean. Polymers, 17(17), 2354. https://doi.org/10.3390/polym17172354

Ideriah, T. J. K., Ighomuaye, M. N., Boisa, N. & Cookey, G. A. (2025). Preparation and Characterization of Magnetite Nanoparticles and Biochar from Unripe Banana Peels from Biara in Rivers State, Nigeria. International Journal of Research and Innovation in Applied Science, 10 (3), 118 -133.

Adeniyi, A. S., Ehirim, E. O. & Wordu, A. A. (2020). Degradation of Crude Oil Polluted Soil Using Magnetic Nano-Particles. Global Scientific Journal, 8(2), 933-977.

Banerjee, S., Mukherjee, S., Laminka-Ot, A., Joshi, S. R., Mandal, T. & Halder, G. (2016). Biosorptive uptake, of Fe²⁺, Cu²⁺, and As⁵⁺, by activated biochar derived from Colocasia esculenta: Isotherm, kinetics, thermodynamics, and cost estimation. Journal of Advanced Research, 7(5), 597–610.

Shende, A. P. & Chidambaram, R. (2023). Cocoyam powder extracted from Colocasia antiquorum as a novel plant-based bioflocculant for industrial wastewater treatment: Flocculation performance and mechanism. Heliyon, 9(4), e15228. https://doi.org/10.1016/j.heliyon.2023.e15228

Vuong, T. X., Nguyen, D. P., Nguyen, V. H. N., Pham, T. T. H. & Nguyen, T. T. T. (2025). Immobilization of lead and zinc in contaminated soil using taro stem-derived biochar and apatite amendments: A comparative study of application ratios and pyrolysis temperatures. RSC Advances, 15(19), 11975–12000.

Tong, S., Yuqi, Z. & Qiang, W. (2020). Recent advances in chemical admixtures for improving the workability of alkali-activated slag-based material systems. Construction and Building Materials, 261, 121647. https://doi.org/10.1016/j.conbuildmat.2020.121647.

Amalina, F., Abd Razak, A. S., Krishnan, S., Sulaiman, H., Zularisam, A. W. & Nasrullah, M. (2022). Biochar production techniques utilizing biomass waste-derived materials and environmental applications – A review. Journal of Hazardous Materials Advances, 7, 100134. https://doi.org/10.1016/j.hazadv.2022.100134

Ben, F. & Olubambi, P. A. (2024b). In-situ reinforcement of AA6063/Al₂O₃ hybrid composite: Comparative wear and hardness evaluation of Manihot esculenta and green Plantago major particulates. Discover Applied Sciences, 6, 280, 1–19.

Vilakazi, S. P., Muchaonyerwa, P. & Buthelezi-Dube, N. N. (2023). Characteristics and liming potential of biochar types from potpine bark and pine bark. PLOS ONE, 18(2), e0282011. https://doi.org/10.1371/journal.pone.0282011

Grema, I., Hamissou, M., Esaie, K. & Appiah, K. (2023). Valorization of cassava peelings into biochar: Physical and chemical characterizations of biochar prepared for agricultural purposes. Scientific African, 20, e01737. https://doi.org/10.1016/j.sciaf.2023.e01737

Adekiya, A. O., Agbede, T. M., Olayanju, A., Ejue, W. S., Adekanye, T. A., Adenusi, T. T. & Ayeni, J. F. (2020). Effect of biochar on soil properties, soil loss, and cocoyam yield in sandy-loamical sandyloam Alfisol. The Scientific World Journal, 2020, 9391630. https://doi.org/10.1155/2020/9391630

Department of Petroleum Resources (DPR-EGASPIN, 2002) “Environmental Guidelines and Standards for the Petroleum Industry in Nigeria “DPR:Lagos Nigeria.

Downloads

Published

2026-07-06

Issue

Section

Articles

How to Cite

Maduelosi, N. J., Ighomuaye, M. N., & Joseph, E. E. (2026). Characterization of Cocoyam Peels Biochar for Remediation of Crude Oil Polluted Soils. International Journal Of Research And Technopreneurial Innovations, 3(1), 74-82. https://doi.org/10.60787/ijrti.vol3no1.80

Most read articles by the same author(s)

Similar Articles

21-21 of 21

You may also start an advanced similarity search for this article.