Analisis Potensi Mangrove Sebagai Fitoremediator Nutrien (Nitrogen Dan Fosfor) Pada Limbah Tambak Udang Di Area Pesisir Desa Legung
DOI:
https://doi.org/10.62710/258tkd03Keywords:
Bioaccumulation, Mangrove Effectiveness, Phytoremediation, Nutrient, Shrimp PondAbstract
Mangrove ecosystems have considerable potential as natural phytoremediation agents for treating shrimp aquaculture wastewater, yet their effectiveness in narrow buffer zones located close to pond outlets remains poorly understood. This study addresses that gap by integrating water quality assessment, phytoremediation efficiency, and nutrient bioaccumulation mechanisms of two dominant mangrove species Lumnitzera racemosa and Avicennia marina within a single, spatially confined coastal transition zone in Legung Village, Sumenep Regency. A natural experimental approach was used, comparing water quality and plant nutrient content across four zones along the wastewater flow path. The mangrove zone reduced phosphate concentrations very effectively (>97%) but was markedly less effective for ammonia (14.88%), while the two species showed contrasting nutrient-partitioning strategies: root retention in Lumnitzera Racemosa versus active stem translocation in Avicennia marina. These findings provide practical guidance for designing species-based, tiered mangrove buffer zones as a nature-based approach to managing shrimp pond wastewater in narrow coastal transition areas.
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Abdul Wafi, Heri Ariadi, T. van M. (2025). Dynamic Model Analysis of Waste Absorption Carrying Capacity Values in Semi-Intensive Shrimp Ponds. Journal of Biology & Biology Education, 1–11. https://doi.org/http://dx.doi.org/10.15294/biosaintifika.v17i3.28439
Alongi, D. M. (2020). Carbon balance in salt marsh and mangrove ecosystems: A global synthesis. Journal of Marine Science and Engineering, 8. https://doi.org/10.3390/jmse8100767
Arifanti, V. B., Kauffman, J. B., Subarno, J. B., Ilman, M., Tosiani, A., & Novita, N. (2022). Contributions of mangrove conservation and restoration to climate change mitigation in Indonesia. Global Change Biology, 28(15), 4523–4538. https://doi.org/10.1111/gcb.16216
Cao, T. T., Anh Le, H., & Eppe, G. (2025). Nutrient dynamics, environmental impacts, and feed efficiency in intensive whiteleg shrimp (Litopenaeus vannamei) farming on sandy soils in Ninh Thuan, Vietnam. Aquaculture Reports, 44(August), 103050. https://doi.org/10.1016/j.aqrep.2025.103050
Dermawan, R., Sasongko, A. S., & Yulda, Y. (2026). Studi Analisis Nitrat , Fosfat dan Amonia Muara Sungai di Pesisir Teluk Banten , Banten Study of Nitrate , Phosphate and Ammonia Analysis of River Estuary on the Coast of Banten Bay , Banten. 15(1), 233–242.
Ferdiansyah, A., & Ali, M. (2024). Biodiversity of Mangrove Vegetation in Rivers, Estuaries and Coastal Areas in Saronggi Subdistrict, Sumenep. Electronic Journal of Education, Social Economics and Technology, 5(2), 197–202. https://doi.org/10.33122/ejeset.v5i2.175
Galimberti, P. (2020). Open Science and Evaluation. Scires-It, 10(2), 65–70. https://doi.org/10.2423/i22394303v10Sp65
Hamzah, F., & Setiawan, A. (2010). Akumulasi logam berat Pb, Cu, dan Zn di hutan mangrove Muara Angke, Jakarta Utara. Jurnal Ilmu Dan Teknologi Kelautan Tropis, 2(2), 41–52.
Jumraeni, Khaeriyah, A., Burhanuddin, & Anwar, A. (2020). Pengaruh Model Pembuangan terhadap akumulasi bahan organik tambak intensif udang vaname (litopenaeus vannamei). Octopus : Jurnal Ilmu Perikanan, 9(1), 11–18.
Khotimah, N. N., Rozirwan, Putri, W. A. E., Fauziyah, Aryawati, R., Isnaini, & Nugroho, R. Y. (2024). Bioaccumulation and Ecological Risk Assessment of Heavy Metal Contamination (Lead and Copper) Build Up in the Roots of Avicennia alba and Excoecaria agallocha. Journal of Ecological Engineering, 25(5), 101–113. https://doi.org/10.12911/22998993/185716
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.
Mahmud, S. L., Nugrahani, E. H., & Sianturi, P. (2013). Model Matematika dan Analisis Kandungan Oksigen Terlarut dalam Badan Air yang Mengalami Eutrofikasi. Jurnal Matematika Dan Aplikasi, 1–11.
Maysabila, A., Heryanti, R., Permana, R., & Hasan, Z. (2023). Bioremediation of shrimp pond wastewater using effective microorganism-4 (EM4). Aceh Journal of Animal Science, 8(3), 72–77. https://doi.org/10.13170/ajas.8.3.28971
Putri, Safira Aisha; Suryono; Ario, R. (2022). Hubungan Konsentrasi Nutrien Pada Sedimen terhadap Persentase Tutupan Lamun di Pulau Harapan dan Kelapa Dua, Kepulauan Seribu, DKI Jakarta. Journal of Marine Research, 11. https://doi.org/DOI : 10.14710/jmr.v11i4.34126
Saputra, C. A., Yuniarti, Y., Harsono, G., Subiyanto, S., & Rafii, A. (2024). Studi Pola Sebaran Sedimen Dasar Perairan Menggunakan Model Hidrodinamika 2 Dimensi Di Pantai Biru, Desa Kersik, Kecamatan Marangkayu, Kutai Kartanegara. Jurnal Hidrografi Indonesia, 6(1), 23–34. https://doi.org/10.62703/jhi.v6i1.63
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 Environmental Engineering and Sustainable Technology. https://doi.org/10.21776/ub.jeest.2023.010.02.7
Supono. (2018). manajemen kualitas air untuk budidaya tambak udang (T. aura Creative (ed.); xvi).
Toan, N., Ngoc, P., Dũng, L., Tue, N., Quy, T., & Nhuan, M. (2025). Nitrate, Ammonium, and Phosphate Patterns from Mangrove Sediment Cores Near Extensive Aquaculture Areas in the Red River Delta, Vietnam. One Ecosystem. https://doi.org/10.3897/oneeco.10.e150217
Yusal, M. S., Hasyim, A., Hastuti, H., Arif, A., & Pratomo, R. H. S. (2025). Review Eutrofikasi: Risiko dalam Kesuburan Lingkungan Perairan dan Upaya Penanggulangannya. Jurnal Kesehatan Lingkungan Indonesia, 24(1), 123–134. https://doi.org/10.14710/jkli.67125
Zul, D. (2026). Isolasi dan Karakterisasi Bakteri Selulolitik dari Hutan Mangrove Bengkalis , Riau : Potensi Sebagai Agen Biofertilizer Isolation and Characterization of Cellulolytic Bacteria from the Bengkalis Mangrove Forest , Riau : Potential Biofertilizer Agents Pend. 11(1), 12–26. https://doi.org/10.24002/biota.v11i1.11824
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