Toxicity Test of Zinc on Contaminated Soil by Petroleum Products (Fuel Oil) around Pertamina Rewulu-Cilacap Pipeline Bantul, Yogyakarta by Using Mung Bean (Vigna radiata) and Water Spinach (Ipomoea aquatica)

https://doi.org/10.22146/ijc.85381

Linda Johana Latumahina(1), Yosua Tanzil(2), Suyanta Suyanta(3), Suherman Suherman(4*)

(1) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Gadjah Mada, Sekip Utara, Yogyakarta 55281, Indonesia
(2) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Gadjah Mada, Sekip Utara, Yogyakarta 55281, Indonesia
(3) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Gadjah Mada, Sekip Utara, Yogyakarta 55281, Indonesia
(4) Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Gadjah Mada, Sekip Utara, Yogyakarta 55281, Indonesia
(*) Corresponding Author

Abstract


Toxicity test of zinc on contaminated soil by petroleum products around the Pertamina Rewulu-Cilacap pipeline, Bantul, Yogyakarta by using mung bean (Vigna radiata) and water spinach (Ipomoea aquatica) have been studied. This study aims to investigate the physico-chemical properties, adsorption, and desorption of soil samples, and the effect of Zn toxicity on the growth of mung bean and water spinach. The physico-chemical properties were evaluated including moisture content, ash content, pH, conductivity, total organic carbon, cation exchange capacity, and heavy metal content. In addition, total petroleum hydrocarbon was analyzed by using GC-MS, and samples were characterized by using FTIR and XRD. The adsorption and desorption capacities of Zn were determined by an atomic absorption spectrophotometer (AAS) measurement. Toxicity test was conducted on the growth of mung bean and water spinach. This study showed that soil sample point III had the highest Zn content at 632.26 mg kg−1. Adsorption isotherms of zinc metal followed the Langmuir isotherm model and maximum adsorption occurred at 100 mg kg−1. Optimum desorption takes place at the concentration of citrate acid 0.7 mol L−1 and at pH 3. Toxicity test results revealed that zinc metal at high concentrations was found to be toxic to seedling growth.


Keywords


petroleum; zinc; adsorption-desorption; toxicity test

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References

[1] Ajona, M., and Vasanthi, P., 2021, Bioremediation of petroleum contaminated soils – A review, Mater. Today: Proc., 45, 7117–7122.

[2] Yuniati, M.D., 2018, Bioremediation of petroleum-contaminated soil: A review, IOP Conf. Ser.: Earth Environ. Sci., 118 (1), 012063.

[3] Briffa, J., Sinagra, E., and Blundell, R., 2020, Heavy metal pollution in the environment and their toxicological effects on humans, Heliyon, 6 (9), e04691.

[4] Khan, M.U., Muhammad, S., Malik, R.N., Khan, S.A., and Tariq, M., 2016, Heavy metals potential health risk assessment through consumption of wastewater irrigated wild plants: A case study, Hum. Ecol. Risk Assess.: Int. J., 22 (1), 141-152.

[5] Singh, D., Sharma, N.L., Singh, C.K., Yerramilli, V., Narayan, R., Sarkar, S.K., and Singh, I., 2021, Chromium(VI)-induced alterations in physico-chemical parameters, yield, and yield characteristics in two cultivars of Mungbean (Vigna radiata L.), Front. Plant Sci., 12, 735129.

[6] Suherman, S., Akmarina, W., Sutiawan, W., Aprilita, N.H., Mudasir, M., and Morita, K., 2019, Toxicity test of desorbed chromium from polluted soil around tannery industry in Yogyakarta-Indonesia by using Brassica juncea and Helianthus annuus L., Molekul, 14 (2), 157–164.

[7] Lyubenova, M., Dineva, S., Cala, K., Dinich, B., and Boteva, S., 2019, Ecotoxicity of purified industrial wastewater, Environ. Ecol. Res., 7 (4), 209–219.

[8] Smolinska, B., and Rowe, S., 2015, The potential of Lepidium sativum L. for phytoextraction of Hg-contaminated soil assisted by thiosulphate, J. Soils Sediments, 15 (2), 393–400.

[9] Bożym, M., Król, A., and Mizerna, K., 2021, Leachate and contact test with Lepidium sativum L. to assess the phytotoxicity of waste, Int. J. Environ. Sci. Technol., 18 (7), 1975–1990.

[10] Kome, G.K., Enang, R.K., Yerima, B.P.K., and Lontsi, M.G.R., 2018, Models relating soil pH measurements in H2O, KCl and CaCl2 for volcanic ash soils of Cameroon, Geoderma Reg., 14, e00185.

[11] Astari, S.A., Mudasir, M., and Suherman, S., 2024, Soil toxicity around the textile industry in Bantul using spinach seeds (Amaranthus gangeticus) and bean sprouts (Phaseolus aureus), Molekul, 19 (1), 1–7.

[12] Libohova, Z., Seybold, C., Wysocki, D., Wills, S., Schoeneberger, P., Williams, C., Lindbo, D., Stott, D., and Owens, P.R., 2018, Reevaluating the effects of soil organic matter and other properties on available water-holding capacity using the National Cooperative Soil Survey Characterization Database, J. Soil Water Conserv., 73 (4), 411–421.

[13] Singh Yadav, S.P., Bhandari, S., Bhatta, D., Poudel, A., Bhattarai, S., Yadav, P., Ghimire, N., Paudel, P., Paudel, P., Shrestha, J., and Oli, B., 2023, Biochar application: A sustainable approach to improve soil health, J. Agric. Food Res., 11, 100498.

[14] Muir, B., Sobczyk, M., and Bajda, T., 2021, Fundamental features of mesoporous functional materials influencing the efficiency of removal of VOCs from aqueous systems: A review, Sci. Total Environ., 784, 147121.

[15] Katti, K.S., Sikdar, D., Katti, D.R., Ghosh, P., and Verma, D., 2006, Molecular interactions in intercalated organically modified clay and clay–polycaprolactam nanocomposites: Experiments and modeling, Polymer, 47 (1), 403–414.

[16] Amarasinghe, P.M., Katti, K.S., and Katti, D.R., 2008, Molecular hydraulic properties of montmorillonite: a polarized fourier transform infrared spectroscopic study, Appl. Spectrosc., 62 (12), 1303–1313.

[17] Hospodarova, V., Singovszka, E., and Stevulova, N., 2018, Characterization of cellulosic fibers by FTIR spectroscopy for their further implementation to building materials, Am. J. Anal. Chem., 9 (6), 303–310.

[18] Suherman, S., Schmidt, C., Kolb, M., Zachmann, D., and Bahadir, M., 2013, Partitioning of copper and lead between solid and dissolved organic matter in a humus-rich soil of the Harz Mountains (Germany) and ecotoxicity test with Lepidium sativum, Fresenius Environ. Bull., 22 (2), 318–327.

[19] Lv, N., Wang, X., Peng, S., Zhang, H., and Luo, L., 2018, Study of the kinetics and equilibrium of the adsorption of oils onto hydrophobic jute fiber modified via the sol-gel method, Int. J. Environ. Res. Public Health, 15 (5), 969.

[20] Desta, M.B., 2013, Batch sorption experiments: Langmuir and Freundlich isotherm studies for the adsorption of textile metal ions onto teff straw (Eragrostis tef) agricultural waste, J. Thermodyn., 2013 (1), 375830.

[21] Jing, Y.D., He, Z.L., and Yang, X.E., 2007, Effects of pH, organic acids, and competitive cations on mercury desorption in soils, Chemosphere, 69 (10), 1662–1669.

[22] Huang, J., Yuan, F., Zeng, G., Li, X., Gu, Y., Shi, L., Liu, W., and Shi, Y., 2017, Influence of pH on heavy metal speciation and removal from wastewater using micellar-enhanced ultrafiltration, Chemosphere, 137, 199–206.

[23] Pang, Y.L., Quek, Y.Y., Lim, S., and Shuit, S.H., 2023, Review on phytoremediation potential of floating aquatic plants for heavy metals: A promising approach, Sustainability, 15 (2), 1290.



DOI: https://doi.org/10.22146/ijc.85381

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