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Diesel power plants produce wastewater containing heavy metals. This study focused on analyzing the role of mangroves around the site. The results showed that Cu metal concentrations in sediments ranged from 10.01–17.76 mg/kg and Cr ranged from 13.06–20.34 mg/kg, and Cu and Cr metal concentrations in Avicennia sp. mangrove were 25.04–42.05 mg/kg; 11.78–28.21 mg/kg, respectively, and showed bioaccumulation and translocation abilities of Cu and Cr of 2.34–2.5 (BCF > 1) and 0.6–0.69 (TF < 1); 0.9–1.39 (BCF < 1) and 0.4–0.53 (TF < 1), while in mangrove Rhizophora sp., namely 13.51–29.24 mg/kg; 21.52–58.38 mg/kg, and showed bioaccumulation and translocation abilities of Cu and Cr, respectively, 1.35–1.64 (BCF > 1) and 0.61–0.74 (TF < 1); 1.65–2.87 (BCF > 1) and 0.62–0.84 (TF < 1). BCF > 1 indicates that mangroves are accumulators, and BCF < 1 is an excluder. TF value < 1 indicates that mangroves are phytostabilisers. This research can be a reference for diesel power plant companies to plant mangroves Avicennia sp. and Rhizophora sp. around the source of wastewater outlets. In addition to absorbing CO2 emissions in the environment, they can also absorb heavy metals derived from diesel processing.
Słowa kluczowe
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Tom
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223--230
Opis fizyczny
Bibliiogr. 43 poz., rys., tab.
Twórcy
autor
- Environmental Management Study Program, Graduate School, Hasanuddin University, Makassar 90245, Indonesia
autor
- Department of Marine Science, Faculty of Marine Science and Fisheries, Hasanuddin University, Makassar 90245, Indonesia
autor
- Department of Biology, Faculty of Mathematics and Natural Sciences, Hasanuddin University, Makassar 90245, Indonesia
Bibliografia
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- 2. Aken, I.A., Okanga-Guay, M., Abaker, M., Dumont, E., Boubala, S.D.M., Ngombi-Pemba, L., Nieguitsila, A. 2023. Allometric equation for aerial carbon estimation (AGC) of Rhizophora racemosa and Avicennia germinans Mangroves of olende and ozouri in the Ogooué Delta in Gabon. East African Journal of Forestry and Agroforestry, 6(1), 148–162. https://doi.org/10.37284/eajfa.6.1.1228
- 3. Akpoveta, O., Osakwe, S. 2014. Determination of heavy metal contents in refined petroleum products. IOSR Journal of Applied Chemistry, 7(6), 01–02. https://doi.org/10.9790/5736-07610102
- 4. Analuddin, K., Armid, A., Ruslin, R., Sharma, S., Ode Kadidae, L., Ode Muhammad Yasir Haya, L., Septiana, A., Rahim, S., McKenzie, R.A., La Fua, J. 2023. The carrying capacity of estuarine Mangroves in maintaining the coastal urban environmental health of Southeast Sulawesi, Indonesia. Egyptian Journal of Aquatic Research, 49, 327–338. https://doi.org/10.1016/j.ejar.2023.03.002
- 5. Anjaini, J., Simangunson, T., Wijaya, R. 2023. Mangroves as indicators of heavy metal pollution in waters. 1(2017), 6–9.
- 6. Arumugam, G., Rajendran, R., Ganesan, A., Sethu, R. 2018. Bioaccumulation and translocation of heavy metals in mangrove rhizosphere sediments to tissues of Avicenia marina – A field study from tropical mangrove forest. Environmental Nanotechnology, Monitoring and Management, 10, 272–279. https://doi.org/10.1016/j.enmm.2018.07.005
- 7. Ayujawi, S.A., Takarina, N.D. 2020. Bioaccumulation of heavy metal in Avicennia sp. from Blanakan Riparian, Subang, West Java. IOP Conference Series: Earth and Environmental Science, 550(1). https://doi.org/10.1088/1755-1315/550/1/012008
- 8. Azizah, D., Hamidy, R., Mubarak, M., Efriyeldi, E. 2021. Phytoaccumulation of heavy metals Pb and Cr in Rhizophora mucronata around Former Bauxite Mine Area, Bintan Island. Indonesian Environmental Dynamics, 8(2), 147. https://doi.org/10.31258/dli.8.2.p.147-153 In Indonesian.
- 9. Batley, G.., Humphrey, C., Apte, S., Stauber, J. 2003. A guide to the application of the water quality guidelines in the minerals industry a guide to the application of the anzecc/armcanz water quality guidelines in the (issue September).
- 10. Bibin, M., Ardian, A. 2020. Development of mangrove tourism potential through mangrove planting activities in the Suppa Coastal Area. Journal of Tourism Empowerment, 2(1), 36–41. (in Indonesia)
- 11. Chang, L.F., Fei, J., Wang, Y.S., Ma, X.Y., Zhao, Y., Cheng, H. 2023. Comparative analysis of Cd uptake and tolerance in two mangrove species (Avicennia marina and Rhizophora stylosa) with distinct apoplast barriers. Plants, 12(22). https://doi.org/10.3390/plants12223786
- 12. Coufalík, P., Matoušek, T., Křůmal, K., VojtíšekLom, M., Beránek, V., Mikuška, P. 2019. Content of metals in emissions from gasoline, diesel, and alternative mixed biofuels. Environmental Science and Pollution Research, 26(28), 29012–29019. https://doi.org/10.1007/s11356-019-06144-4
- 13. Dan, A., Oka, M., Fujii, Y., Soda, S., Ishigaki, T., Machimura, T., Ike, M. 2017. Removal of heavy metals from synthetic landfill leachate in lab-scale vertical flow constructed wetlands. Science of the Total Environment, 584–585, 742–750. https://doi.org/10.1016/j.scitotenv.2017.01.112
- 14. Dudani, S.N., Lakhmapurkar, J., Gavali, D., Patel, T. 2017. Heavy metal accumulation in the mangrove ecosystem of Fouth Gujarat Coast, India. Turkish Journal of Fisheries and Aquatic Sciences, 17(1), 755–766. https://doi.org/10.4194/1303-2712-v17
- 15. Hallare, A.V., Santos, A.L., Uy, M.N.A.R., Macabeo, A.P.G. 2015. Avicennia marina (Forssk) Vierh. as phytoaccumulator of sediment heavy metals in the Las Piñas - Parañaque critical Habitat and Ecotourism Area (Philippines). Research Journal of Pharmaceutical, Biological and Chemical Sciences, 6(2), 392–398.
- 16. Hilmi, E., Prayogo, N.A., Junaidi, T., Mahdiana, A., Fikriyya, N. 2023. Adaptive pattern of mangrove species and the mangrove landscaping in the heavy metal polluted area of Eastern Segara Anakan Lagoon, Indonesia. Biodiversitas, 24(5), 2927–2937. https://doi.org/10.13057/biodiv/d240548
- 17. Hossain, M.B., Masum, Z., Rahman, M.S., Yu, J., Noman, M.A., Jolly, Y.N., Begum, B.A., Paray, B.A., Arai, T. 2022. Heavy metal accumulation and phytoremediation potentiality of some selected mangrove species from the World’s Largest Mangrove Forest. Biology, 11(8). https://doi.org/10.3390/biology11081144
- 18. Kaewtubtim, P., Meeinkuirt, W., Seepom, S., Pichtel, J. 2016. Heavy metal phytoremediation potential of plant species in a Mangrove Ecosystem in Pattani Bay, Thailand. 14(January), 367–382. https://doi.org/10.15666/aeer/1401
- 19. Li, Q., Han, Z., Tian, Y., Xiao, H., Yang, M. 2023. Risk assessment of heavy metal in farmlands and crops near Pb–Zn mine tailing ponds in Niujiaotang, China. Toxics, 11(2). https://doi.org/10.3390/toxics11020106
- 20. Li, R., Chai, M., Qiu, G. Y. 2016. Distribution, fraction, and ecological assessment of heavy metals in sediment-plant system in mangrove forest, South China Sea. PLoS ONE, 11(1), 1–15. https://doi.org/10.1371/journal.pone.0147308
- 21. MacFarlane, G.R., Koller, C.E., Blomberg, S.P. 2007. Accumulation and partitioning of heavy metals in Mangroves: A synthesis of field-based studies. Chemosphere, 69(9), 1454–1464. https://doi.org/10.1016/j.chemosphere.2007.04.059
- 22. Maharani, M.D.K., Asus, M.S.H., Muhammad, M. 2019. Accumulation of heavy metals lead (Pb) and copper (Cu) in mangrove area of Avicennia marina in Manyar Subdistrict, Gresik District, East Java. Research Journal of Life Science, 6(2), 104–113. https://doi.org/10.21776/ub.rjls.2019.006.02.4 (In Indonesian).
- 23. Mahmudi, M., Adzim, A., Fitri, D.H., Lusiana, E.D., Buwono, N.R., Arsad, S., Musa, M. 2021. Performance of Avicennia alba and Rhizophora mucronata as lead bioaccumulator in Bee Jay Bakau Resort, Indonesia. Journal of Ecological Engineering, 22(2), 169–177. https://doi.org/10.12911/22998993/131032 In Indonesia.
- 24. Mao, C., Du, S., Zhang, G., Wang, Y., Rao, W. 2022. Spatial distribution and ecological risk assessment of heavy metals in the Sediment of a Tropical Mangrove Wetland on Hainan Island, China. Water (Switzerland), 14(22). https://doi.org/10.3390/w14223785
- 25. Marchand, C., Fernandez, J.M., Moreton, B. 2016. Trace metal geochemistry in mangrove sediments and their transfer to mangrove plants (New Caledonia). Science of the Total Environment, 562, 216– 227. https://doi.org/10.1016/j.scitotenv.2016.03.206
- 26. Mngongo, M.E., Mshora, A.M., Msigwa, C., Komanya, A., Shimo, S. 2023. Bio-concentration and translocation of chromium in soil-plant system: Health risks in Usangu agro-ecosystem. Case Studies in Chemical and Environmental Engineering, 8(May), 100398. https://doi.org/10.1016/j.cscee.2023.100398
- 27. Pulles, T., Denier van der Gon, H., Appelman, W., Verheul, M. 2012. Emission factors for heavy metals from diesel and petrol used in European vehicles. Atmospheric Environment, 61, 641–651. https://doi.org/10.1016/j.atmosenv.2012.07.022
- 28. Rahman, A., Haeruddin, Ghofar, A. 2022. Sediment organic carbon and heavy metal concentrations in Garang River and West Flood Canal, Semarang. JFMR-Journal of Fisheries and Marine Research, 6(3). https://doi.org/10.21776/ub.jfmr.2022.006.03.3 (In Indonesian).
- 29. Rumaropen, L., Bertha, M., Muhammad, F.I. 2021. Potential of chitosan from shell waste of penaeus monodon shrimp from bintuni as biosorbent of organic waste and heavy metal in liquid waste of PLTD Manokwari. Jurnal Natural, 17(1), 18–25.(In Indonesian).
- 30. Sari, S. H. J., Yona, D., Vidayanti, V., Ramadhan, F. 2023. Effectivity of bioaccumulation and translocation of heavy metals (Cd, Zn, and Pb) in Avicennia Marina Growing At Wonorejo Mangrove Ecosystem, East Surabaya. Journal of Enviromental Engineering and Sustainable Technology, 10(2), 104–111. https://doi.org/10.21776/ub.jeest.2023.010.02.7 (In Indonesian).
- 31. Sukono, G.A.B., Hikmawan, F.R., Evitasari, E., Satriawan, D. 2020. Phytoremediation mechanisms: A Review. Journal of Environmental Pollution Control (JPPL), 2(2), 40–47. https://doi.org/10.35970/jppl.v2i2.360 (In Indonesian).
- 32. Supriyantini, E., Soenardjo, N. 2016. Heavy metal content of lead (Pb) and copper (Cu) in roots and fruits of mangrove Avicennia marina in the waters of Tanjung Emas Semarang. Journal of Tropical Marine, 18(2), 98–106. https://doi.org/10.14710/jkt.v18i2.520 (In Indonesian).
- 33. Susanto, I., Sunanda, W., Kurniawan, R. 2019. Analysis of diesel power plant on Celagen Island. Proceedings of the National Seminar on Research & Community Service, 122–126. (In Indonesian)
- 34. Takarina, N.D., Pin, T.G. 2017. Bioconcentration factor (BCF) and translocation factor (TF) of heavy metals in Mangrove Trees of Blanakan Fish Farm. Makara Journal of Science, 21(2). https://doi.org/10.7454/mss.v21i2.7308
- 35. Thanh-Nho, N., Marchand, C., Strady, E., HuuPhat, N., Nhu-Trang, T.T. 2019. Bioaccumulation of some trace elements in tropical mangrove plants and snails (Can Gio, Vietnam). Environmental Pollution, 248, 635–645. https://doi.org/10.1016/j.envpol.2019.02.041
- 36. Titah, H.S., Pratikno, H., Harnani, B.R.D. 2021. Uptake of copper and chromium by Avicennia marina and Avicennia alba at Wonorejo Estuary, East-coastal area of Surabaya, Indonesia. Regional Studies in Marine Science, 47, 101943. https://doi.org/10.1016/j.rsma.2021.101943. In Indonesia.
- 37. Usman, A.R.A., Alkredaa, R.S., Al-Wabel, M.I. 2013. Heavy metal contamination in sediments and Mangroves from the coast of Red Sea: Avicennia marina as potential metal bioaccumulator. Ecotoxicology and Environmental Safety, 97, 263–270. https://doi.org/10.1016/j.ecoenv.2013.08.009
- 38. Wang, J., Wang, P., Zhao, Z., Huo, Y. 2021. Uptake and concentration of heavy metals in dominant mangrove species from Hainan Island, South China. Environmental Geochemistry and Health, 43(4), 1703– 1714. https://doi.org/10.1007/s10653-020-00717-w
- 39. Wang, Z., Liu, X., Qin, H. 2019. Bioconcentration and translocation of heavy metals in the soil-plants system in Machangqing copper mine, Yunnan Province, China. Journal of Geochemical Exploration, 200(February), 159–166. https://doi.org/10.1016/j.gexplo.2019.02.005
- 40. Wu, Z., Shang, X., Liu, G., Xie, Y. 2023. Comparative analysis of flavonoids, polyphenols and volatiles in roots, stems and leaves of five Mangroves. PeerJ, 11, 1–24. https://doi.org/10.7717/peerj.15529
- 41. Yan, Z., Sun, X., Xu, Y., Zhang, Q., Li, X. 2017. Accumulation and tolerance of Mangroves to heavy metals: A review. Current Pollution Reports, 3(4), 302–317. https://doi.org/10.1007/s40726-017-0066-4
- 42. Yap, C.K., Al-Mutairi, K.A. 2023. Potentially toxic metals in the tropical Mangrove Non-Salt Secreting Rhizophora apiculata: A field-based biomonitoring study and Phytoremediation Potentials. Forests, 14(2), 1–26. https://doi.org/10.3390/f14020237
- 43. Yunasfi, Leidonald, R., Dalimunthe, A., Rakesya, N. 2022. Rhizophora apiculata on copper and lead heavy metal substances and their effect on water quality in Belawan. IOP Conference Series: Earth and Environmental Science, 995(1). https://doi.org/10.1088/1755-1315/995/1/012043 (In Indonesian)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a3d8292a-bc61-499c-8219-54be6911ae79