BUDIDAYA SISTEM AKUAPONIK: Teori Dan Praktik

Penulis

  • Aprelia Martina Tomasoa, Leni Handayani, Firmansyah Bin Abd Jabbar, Asis Bujang, Muhammad Latiful Khobir, Ismi Musdalifah Darsan, Sipriana Siana Tumembouw, Hilma Putri Fidyandini, Cut Dara Dewi, Fatria Resti Haryani Penulis

Kata Kunci:

BUDIDAYA SISTEM AKUAPONIK: Teori Dan Praktik

Abstrak

Sistem akuaponik merupakan inovasi pertanian kombinasi perikanan terpadu, yang menggabungkan budidaya ikan serta tanaman dalam satu ekosistem. Sistem ini menjadi solusi alternatif yang ramah lingkungan ditengah tantangan keterbatasan lahan, minimnya sumberdaya air bersih, serta kebutuhan pangan yang meningkat. Akuaponik mampu mengurangi limbah budidaya secara signifikan melalui sistem daur ulang dalam siklus budidaya. Penerapan akuaponik dapat dilakukan dari skala rumah tangga hingga skala industri. Sistem ini membuka peluang ekonomi baru juga mendukung praktik pertanian dan akuakultur modern zero waste, di samping meningkatkan produktivitas budidaya. Namun, pengetahuan teknis serta ekologis tentang sistem tersebut masih terbatas. Hal inilah yang mendasari buku ini hadir sebagai panduan ilmiah praktis yang membahas delapan aspek utama di dalam sistem akuaponik, mulai dari prinsip dasar ekosistem sampai jenis ikan. Pembahasan dilanjutkan juga dengan manajemen kualitas air, peran dari bakteri, serta nutrisi dan pakan alami. Buku ini disusun berdasarkan pada kajian ilmiah juga praktik lapangan, sehingga diharapkan dapat menjadi referensi penting bagi para mahasiswa, para peneliti, para penyuluh, serta pelaku usaha dalam mengembangkan suatu sistem akuaponik yang produktif juga berkelanjutan.

Referensi

Abusin, S. A., & Mandikiana, B. W. (2020). Towards sustainable food production systems in Qatar: Assessment of the viability of aquaponics. Global Food Security, 25, 100349. https://doi.org/10.1016/j.gfs.2020.100349

Agh, N., Dózsa, L., Bercsényi, M., Hancz, C., Lengyel, Z., Jeney, Z., & Jeney, G. (2018). Feeding efficiency and growth performance of common carp in intensive culture systems. Aquaculture International, 26(1), 45–56. https://doi.org/10.1007/s10499-017-0203-7

Al Tawaha, A.R., Wahab, P.E.M., & Jaafar, H.Z.E. (2025). Optimizing Nutrient Availability in Decoupled Recirculating Aquaponic Systems for Enhanced Plant Productivity: A Mini Review. Nitrogen, 6(1), 1-19. http://dx.doi.org/10.3390/nitrogen6010003.

Al-Hafedh, Y. S., Alam, A., & Beltagi, M. S. (2008). Food production and water conservation in a recirculating aquaponic system in Saudi Arabia at different ratios of fish feed to plants. Journal of the World Aquaculture Society, 39(4), 510–520 https://doi.org/10.1111/j.1749-7345.2008.00181.x

Andriani, R., Tomasoa, A. M., Malan, S., Murhum, M. A., Suryani., Yusuf, M. A., Budiatma, A., Jurharni., Munaeni, W., & Daud, A. HI. (2025). Urban Akuakultur. PT. Kamiya Jaya Aquatic; Ternate

Andriani, Y., Zahidah, Dhahiyat. Y., Hamdani. H., dan Dewi. R. (2019). Performance of Lettuce and Water Spinach in Koi Fish-based Aquaponics System. Asian Journal of Fisheries and Aquatic Research. 3(4). 1-7

Anjasari, S., Raharjo, M. F., & Maulina, T. (2021). Evaluasi pertumbuhan ikan lele (Clarias gariepinus) dalam sistem akuaponik vertikal. Jurnal Akuaponik, 3(1), 12–18.

Aquapona. (n.d.). Aquaponic gardening. https://aquapona.co.uk/aquaponic-gardening/

Aquatic Network. (2025). Oreochromis niloticus (Tilapia). Diakses dari https://aquanet.com

Askari‐Khorasgani, O., and Pessarakli, M. (2020). Tomato (Solanum lycopersicum) culture in vermi-aquaponic systems: II. Strategies for sustainable and economic development: Fertilization practices in vermi-ponic unit. Journal of Plant Nutrition. 43(11). 1726-1739.

Assaffah, T.S., & Primaditya, P. (2020). Media Tanam Akuaponik dalam Ruang. Jurnal Sains dan Seni ITS, 9(1), 19-25. https://doi.org/10.12962/j23373520.v9i1.51642.

Azad, K.N., Salam, M.A., & Azad, K.N. (2016). Aquaponics in Bangladesh: Current Status and Future Prospects. Journal of Bioscience and Agriculture Research, 7(2), 669-677. http://dx.doi.org/10.18801/jbar.070216.79.

Azhari, D., & Tomasoa, A. M. (2018). Kajian kualitas air dan pertumbuhan ikan nila (Oreochromis niloticus) yang dibudidayakan dengan sistem akuaponik. Jurnal Akuatika Indonesia, 3(2), 84-90

Azhari, D., Balansa, W., Mahare, F., & Tomasoa, A. M. (2018). IbM pemanfaatan lahan pekarangan untuk usaha budidaya ikan dan tanaman dengan system akuaponik di Kelurahan Manente, Kecamatan Tahuna. Jurnal Ilmiah Tatengkorang, 2, 14-16

Bailey, D. S. & Ferrarezi, R. S. (2017). Valuation of vegetable crops produced in the UVI Commercial Aquaponic System. Aquaculture Reports, 7, 77-82. https://doi.org/10.1016/j.aqrep.2017.06.002

Beavers, L., & Salveson, A. (2019). Designing and Building Aquaponic Systems. Oregon State University Extension.

Benke, K., & Tomkins, B. (2017). Future food-production systems: Vertical farming and controlled-environment agriculture. Sustainability: Science, Practice, & Policy, 13, 13–26. https://doi.org/10.1080/15487733.2017.1394054

BITRA Indonesia. (2012). Sistem Akuaponik. Diakses dari https://bitra.or.id/2012

Blanchard, B. S., & Fabrycky, W. J. (2010). Systems Engineering and Analysis (5th ed.). Prentice Hall.

Blank, L. T., & Tarquin, A. J. (2012). Engineering Economy (7th ed.). McGraw-Hill Education.

Bosma, R.H., Lacambra, L., Landstra., Perini, C., Poulie. J., Schwaner, M.J., and Yin.Y. (2017). The financial feasibility of producing fish and vegetables through aquaponics. Aquacultural Engineering. 78. 146-154

Bostock, J., McAndrew, B., Richards, R., Jauncey, K., Telfer, T., Lorenzen, K., ... & Little, D. (2010). Aquaculture: global status and trends. Philosophical Transactions of the Royal Society B: Biological Sciences, 365(1554), 2897–2912.

Boyd, C. E. & Tucker, C. S. (1998). Pond Aquaculture Water Quality Management. Springer.

Boyd, C. E. (2019). Water Quality: An Introduction. Springer.

Chandramenon, P., Gascoyne, A., Naughton, L., & Tchuenbou-Magaia, F. 2024. Making Aquaponics More Sustainable Using Worms and Water Replenishment Combined with a Sensing- and IoT-Based Monitoring System. Appl. Sci. 14, 8516.

Channa, A.A., Munir, K., Hansen, M., & Tariq, M.F. (2024). Optimisation of Small-Scale Aquaponics Systems Using Artificial Intelligence and the IoT: Current Status, Challenges, and Opportunities. Encyclopedia, 4(1), 313-336. http://dx.doi.org/10.3390/encyclopedia4010023.

Colt, J. (2006). Water Quality Requirements for Aquaculture. California Fish and Game.

Colt, J., Watten, B., & Rust, M. (2006). System design for effluent reduction in flow-through aquaculture. Aquacultural Engineering, 34(3), 143–156.

Cretu, M.; Dediu, L.; Coadă, T.-M.; RÎmniceanu, C.; Plăcintă, S.; Stroe, D.M.; Vasilean, I. (2022). Comparative study on the growth and development of thyme and basil herbs in aquaponic system and hydroponic system. Anim. Sci. 2022, 1, 573–580

Dauqan, A.M.E.; Aminah Abdullah, A. (2027). Medicinal and Functional Values of Thyme (Thymus vulgaris L.) Herb. JABB 2017, 5, 17–22

De Schryver, P., Crab, R., Defoirdt, T., Boon, N., & Verstraete, W. (2008). The basics of bio-flocs technology: The added value for aquaculture. Aquaculture, 277(3), 125- 137.

Deswati, Deviona, A., Sari, I., Yusuf, Y., and Pardi, H. (2020). The Effect of Aquaponic Compared To Modified Conventional Aquaculture for Improved of Ammonia, Nitrite, dan Nitrate. 13(1). 1-10.

Dinev, T.; Velichkova, K.; Stoyanova, A.; Sirakov, I. (2023). Microbial Pathogens in Aquaponics Potentially Hazardous for Human Health. Microorganisms 2023, 11, 2824

Dong, M.; Feng, H. (2022). Microbial community analysis and food safety practice survey-based hazard identification and risk assessment for controlled environment hydroponic/aquaponic farming systems. Front. Microbiol. 2022, 13, 879260

Dorick, J.; Hayden, M.; Smith, M.; Blanchard, C.; Monu, E.; Wells, D.; Huang, T.-S. (2021). Evaluation of Esherichia coli and coliforms in aquaponics water for produce irrigation. Food Microbiol. 2021, 99, 10380

Dos Santos, M. J. P. L. (2016). Smart cities and urban areas—Aquaponics as innovative urban agriculture. Urban Forestry & Urban Greening, 20, 402–406

Droste, R. L. (1997). Theory and Practice of Water and Wastewater Treatment. John Wiley and Sons, Inc., United States of America.

Ebeling, J. M., Timmons, M. B., & Bisogni, J. J. (2006). Engineering design of mechanical filtration systems for recirculating aquaculture systems. Aquacultural Engineering, 34(3), 245–260.

Endrawati, Y. T., Hartati, R., & Kurniasih, E. (2020). Manajemen Kualitas Air pada Sistem Akuaponik Ikan Nila. Jurnal Akuakultur Indonesia, 19(2), 105–115.

Endut, A., Jusoh, A., Ali, N., Wan Nik, W. B., & Hassan, A. (2010). A study on the growth performance of Tilapia in aquaponic system. Bioresource Technology, 101(12), 425-430. https://doi.org/10.1016/j.biortech.2009.07.035

Endut, A., Jusoh, A., Ali, N., Wan Nik, W. B., & Hassan, A. (2017). A study on the optimal stocking density of red tilapia in a recirculating aquaponic system. Desalination and Water Treatment, 90, 308–314.

Endut, A., Jusoh, A., Ali, N., Wan Nik, W.B., & Hassan, A. (2010). A study on the optimum aeration rate in recirculating aquaponic system. Bioresource Technology, 101(12), 4525–4530.

Endut, A., Lananan. F., Hamid, S.H.A., Jusoh, A., and Nik, W.N.W. (2016). Balancing of nutrient uptake by water spinach (Ipomoea aquatica) and mustard green (Brassica juncea) with nutrient production by African catfish (Clarias gariepinus) in scaling aquaponic recirculation system. Desalination and Water Treatment. 56(60). 29531-29540

Espinosa-Moya, A.; Álvarez-González, A.; Albertos-Alpuche, P.; Guzmán-Mendoza, R.; Martínez-Yáñez, R. (2018). Growth and development of herbaceous plants in aquaponic systems. Acta Univ. Multidiscip. Sci. J. 2018, 28, 1–8

Estim, A., Shaleh. S.R.M., Shapawi. R., Shaufie. S., Mustafa. S., (2020). Maximizing Efficiency and Sustainability of Aquatic Food Production from Aquaponics Systems - A Critical Review of Challenges and Solution Options. Aquaculture Studies. 20(1). 65-72

Fajeriana, N., Ponisri, P., Ali, A., Ali, M., Ali, M., & Gafur, M.A.A. (2023). Budikdamber sebagai aktualisasi kemandirian pangan rumah tangga bagi ibu-ibu majelis ta’lim. JMM (Jurnal Masyarakat Mandiri), 7(1), 49-62. https://doi.org/10.31764/jmm.v7i1.11780.

FAO (Food & Agriculture Organisation). (2014). Small-Scale Aquaponic Food Production – Integrated Fish and Plant Farming. FAO Fisheries and Aquaculture Department, Rome. doi:978-92-5-108276-8. https://openknowledge.fao.org/handle/20.500.14283/i14283.

FAO. (2022a). News article: 2050: A third more mouths to feed, May (2022). https://www.fao.org/news/story/en/item/35571/icode/

FAO. (2022b). Food and agriculture projections to 2050 Global Perspectives Studies Food and Agriculture Organization of the United Nations, May 2022. https://www.fao.org/global-perspectives-studies/food-agriculture-projections-to-2050/en/

Fathulloh & Budiana, N.S. (2020). Akuaponik. Penebar Swadaya, Jakarta.

Fauziyah, S., & Nurdin, E. (2017). Pertumbuhan ikan lele (Clarias sp.) pada sistem akuaponik vertikal dengan menggunakan media tanam yang berbeda. Jurnal Ilmu Perikanan Tropis, 3(2), 54–62.

Fidyandini HP, Yuhana M, Lusiastuti AM. (2016). Pemberian probiotik multispesies dalam media budidaya ikan lele dumbo untuk mencegah penyakit motile Aeromonas septicemia. J Veteriner 17(3): 440-448.

Fitriana, L., & Pratama, R. A. (2018). Analisis kelayakan finansial budidaya ikan mas (Cyprinus carpio) dengan sistem akuaponik. Jurnal Mina Sains, 4(2), 113–119.

Fitriani, N., & Azizah, A. (2018). Efisiensi pakan dan pertumbuhan ikan nila pada budidaya akuaponik dengan tanaman selada. Jurnal Akuakultur Tropis, 2(1), 22–28.

Fitzgerald, J., et al. (2020). Nutrient cycling and microbial ecology in aquaponics systems: Current status and future directions. Aquaculture, 527, 735460.

Fussy, A., & Papenbrock, J. (2022). An overview of soil and soilless cultivation techniques—Chances, challenges and the neglected question of sustainability. Plants, 11(9), 1153.

Gea, M.P., Zendrato, R.J., Telaumbanua, S.O., & Ndraha, A.B. (2025). Pertanian Perkotaan, Solusi Inovatif untuk Ketahanan Pangan di Tengah Kota. Flora: Jurnal Kajian Ilmu Pertanian dan Perkebunan, 2(1), 188-198. https://doi.org/10.62951/flora.v2i1.265.

Gerung, P.R.A., Mudeng, J. D., Salindeho, I.R.N., Longsong, S.N.J., Pangkey, H.., Rumengan, I.F.M. (2022). Pertumbuhan dan kelangsungan hidup ikan nila Oreochromis niloticusyang dikultur pada sistem akuaponik dengan kepadatan biofilter kangkung yang berbeda. Budidaya Perairan 10(20):199-211.

Ghamkhar, R., Hartleb. C., Wu. F., and Hick. A. (2020). Life cycle assessment of a cold weather aquaponic food production system. Journal of Cleaner Production. 224.

Ghazinoory, S., Abdi, M., & Azadegan-Mehr, M. (2011). SWOT methodology: A state-of-the-art review for the past, a framework for the future. Journal of Business Economics and Management, 12(1), 24–48.

Gigliona, J. (2015). Implementation of a Biogas-System into Aquaponics; Mid Sweden University: Sundsvall, Sweden, 2015; p. 35. Available online: https://www.diva-portal.org/smash/record.jsf?pid=diva2:826751&dswid=-3558 (akses 11 Mei 2025)

Goddek, S., & Korner, O. (2019). A fully integrated simulation model of multi-loop aquaponics: A case study for system sizing in different environments. Agricultural Systems, 171, 143–154. https://doi.org/10.1016/j.agsy.2019.01.010

Goddek, S., & Körner, O. (2019). A fully integrated simulation model of multi-loop aquaponics: A case study for system dynamics. Aquacultural Engineering, 83, 1–12.

Goddek, S., Delaide, B., Mankasingh, U., Ragnarsdottir, K. V., Jijakli, M. H., & Thorarinsdottir, R. (2015). Challenges of sustainable and commercial aquaponics. Sustainability, 7(4), 4199–4224.

Goddek, S., Joyce, A., Kotzen, B., & Burnell, G. (2015). Aquaponics Food Production Systems: Combined Aquaculture and Hydroponic Production Technologies for the Future. Springer.

Goddek, S., Joyce, A., Kotzen, B., & Burnell, G. M. (2019). Aquaponics Food Production Systems: Combined Aquaculture and Hydroponic Production Technologies for the Future. Springer Nature. https://doi.org/10.1007/978-3-030-15943-6

Goddek, S., Joyce, A., Kotzen, B., Burnell, G.M. (2019). Aquaponics and Global Food Challenges. Aquaponics and Global Food Challenges. Aquaponics Food Production Systems. 3-17. https://doi.org/10.1007/978-3-030-15943-

Goddek, S., Joyce, A., Wuertz, S., Körner, O., Bläser, I., Reuter, M., & Keesman, K. J. (2019). Decoupled aquaponics systems. Aquaponics Food Production Systems, 10, 973–978

Goodman, E. R. (2011). Aquaponics: community and economic development (Doctoral dissertation, Massachusetts Institute of Technology)

Guedes, de Sousa, J. P.; da Costa Medeiros, J.A.; de Souza, E.; Silva, R.S.; de Sousa, J.M.; da Conceição, M.L.; de Souza, E. L. (2016). The efficacy of Mentha arvensis L. and M. piperita L. essential oils in reducing pathogenic bacteria and maintaining quality characteristics in cashew, guava, mango, and pineapple juices. Int. J. Food Microbiol. 2016, 238, 183–192

Gupta, R., P. Rathi, N. Gupta dan S. Bradoo. (2003). Lipase Assays for conventional and Moleculas Screening : A Overview. Biotechol. Appl. Biochem. (37) 63 –71.

Hakim, R.R., & Hariyadi. (2021). Teknologi Akuaponik sebagai Solusi Kemandirian Pangan Keluarga di Kelompok Kampung Wolulas Kecamatan Turen Kabupaten Malang. Amalee Indonesian Journal of Community Research and Engagement, 2(1), 43-52. https://doi.org/10.37680/amalee.v2i1.643.

Hallmann, J., Quadt-Hallmann, A., Mahaffee, W. F., & Kloepper, J. W. (1997). Bacterial endophytes in agricultural crops. Canadian Journal of Microbiology, 43(10), 895-914.

Handajani, N., Setiawan, R., & Pramono, G. H. (2019). Desain sistem akuaponik sebagai media edukasi dan wisata berbasis lingkungan. Surabaya: Universitas Negeri Surabaya Press.

Handayani, L. (2018). Pemanfaatan Lahan Sempit dengan Sistem Budidaya Aquaponik. Prosiding Seminar Nasional Hasil Pengabdian, 1(1), 118-126.

Handayani, L. (2021). Pengelolaan Mikroorganisme dalam Sistem Akuaponik. Jurnal Agroekoteknologi Tropika, 10(2), 101–112.

Handayani, L., & Gusliany. (2024). Analisis Pertumbuhan Ikan Nila dalam Budidaya Akuaponik di KWT Alam Lestari, Desa Lampuyang. Jurnal Ilmu Hewani Tropika, 13(2), 32–38.

HANNA Instruments (2023). Water Quality Testing Handbook. https://www.hannainst.com

Hao, Y., Ding, K., Xu, Y., Tang, Y., Liu, D., and Gang, L. (2020). States, Trends, and Future of Aquaponics Research. Sustainability. 12(18). 1-14

Hardyanto, R.H. and Ciptadi, P.W. (2020). Smart Aquaponics Design Using Internet of Things Technology. IOP Publishing. 835. 1-5.

Hasanah, N., & Widiyanto, A. (2020). Evaluasi pengaruh sistem pengelolaan limbah padat terhadap kualitas air dan pertumbuhan ikan pada sistem akuaponik. Jurnal Akuakultur Tropika, 8(2), 112–121.

Hasibuan, S., Aryani, N., Darfia, N. E., Mainil, R. I., Irfansyah, I., Muliadi, I., & Ramadhani, R. (2023). Aplikasi Mesin Pompa dan Filter dalam Mengatasi Masalah Kualitas Air Kolam Ikan Patin di Kelurahan Rumbai Bukit. PRIMA: Journal of Community Empowering and Services, 7(2), 61-69.

Hasnawi, H., Nugroho, R. A., & Pratama, A. A. (2021). Pengaruh kombinasi ikan patin dan kangkung terhadap efisiensi sistem akuaponik berbasis biofilter biologis. Jurnal Akuakultur Indonesia, 20(2), 145–154.

Hawari, A. D., Jariah, S., & Ahmad, A. L. (2020). Nutrient loading and waste management in aquaponics using Pangasius hypophthalmus. Aquaculture Reports, 17, 100355. https://doi.org/10.1016/j.aqrep.2020.100355

Hill, T., & Westbrook, R. (1997). SWOT analysis: It's time for a product recall. Long Range Planning, 30(1), 46–52.

Hlordzi V., Felix K.A. Kuebutornye, Afriyie G, Emmanuel Delwin Abarike, Yishan Lu, Shuyan Chi, Melody A. Anokyewaa. 2020. The use of Bacillus species in maintenance of water quality in aquaculture: A review, Aquaculture Reports. 18. https://doi.org/10.15578/jai.20.2.2021.145-154

Hura, M.U.D., Zafar, T., Borana, K., Prasad, J.R., Iqbal, J., 2018. Effect of commercial probiotic Bacillus megaterium on water quality in composite culture of major carps. Int. J. Curr. Agric. Sci. 8, 268–273.

Hussein, M.S., Elzayat, A., and Muhammed, A. (2020). Study of the effects of different monosex Nile tilapia (Oreochromis niloticus) fingerlings densitieson Lettuce (Lactuca sativa) and water quality in a low-techrecirculation aquaponic system. International Journal of Development. 9(1). 11-23.

Ibrahim, L.A., Shaghaleh, H., El-Kassar, G.M., Abu-Hashim, M., Elsadek, E.A. &Alhaj Hamoud, Y. (2023). Aquaponics: a sustainable path to food sovereignty and enhanced water use efficiency. Water, 15(24), p.4310. https://doi.org/10.3390/w15244310

Iribarren, D., P. Dagá. dan M. T. Moreira., G. Feijoo. 2012. Potential Environmental Effects of Probiotics Used In Aquaculture. Aquacult Int 20:779-789.

Iskandar, J., & Elrifadah, E. (2015). Efisiensi Pemberian Pakan Ikan Nila pada Sistem Akuaponik. Jurnal Perikanan Nusantara, 10(1), 25–32.

Jacob, P.; Veenstra, P.J.; Johnson, J.J. Oregano (Origanum vulgare) extract for food preservation and improvement in gastrointestinal health. Int. J. Nutr. 2019, 3, 43–52

Jatuwong, K., Kongkachuichai, R., Techkarnjanaruk, S., & Chaiprapat, S. (2020). Nitrogen transformation and microbial communities in an aquaponic system using catfish and water spinach. Science of the Total Environment, 714, 136806. https://doi.org/10.1016/j.scitotenv.2020.136806

Javanmardi, J.; Khalighi, A.; Kashi, A.; Bais, P.H.; Vivanco, M.J. (2002). Chemical Characterization of Basil (Ocimum basilicum L.) Found in Local Accessions and Used in Traditional Medicines in Iran. J. Agric. Food Chem. 2002, 50, 5878–588

Jose, J.A.C., Chu, T.S.C., Jacob, L.H.M., Rulloda, L.A.R., Ambrosio, A.Z.M.H., Sy, A.C., Vicerra, R.R.P., Choi, A.E.S., & Dadios, E.P. 2025. An Automated Small-Scale Aquaponics System Design Using A Closed Loop Control. Environmental Challenges, 19, 101127.

Junge, R., König, B., Villarroel, M., Komives, T., & J Jakli, H. (2017). Strategien zur Verbesserung der Nachhaltigkeit in der Aquaponik. WasserWirtschaft, 107(6), 16–21.

Junge, R., König, B., Villarroel, M., Komives, T., & Jijakli, H. (2017). Strategic points in aquaponics. Water, 9(3), 182.

Kadlec, R. H., & Wallace, S. D. (2008). Treatment Wetlands. CRC Press.

Kementerian Kelautan dan Perikanan Republik Indonesia (KKP). (2021). Peraturan Menteri Kelautan dan Perikanan Republik Indonesia Nomor 16 Tahun 2021 tentang Baku Mutu Air untuk Usaha Budidaya Ikan.

Mursito, I. D. (2023). Ikan Lele (Clarias sp.). Diakses dari https://www.kompasiana.com/iyuddwimursito

Khaoula, T., Abdelouahid, R.A., Ezzahoui, I., & Marzak, A. 2021. Architecture Design of Monitoring and Controlling of IoT-Based Aquaponics System Powered By Solar Energy. Procedia Computer Science, 191, 493–498.

Kibbeling, M., Blok, V., & van Tulder, R. (2014). Sustainability in Industrial Ecology: A Theoretical Framework. Journal of Cleaner Production, 76, 55–63.

Kimera, F., Mugwanya, M., Dawood, M., & Sewilam, H. (2023). Growth response of kale (Brassica oleracea) and Nile tilapia (Oreochromis niloticus) under saline aqua-sandponics-vegeculture system. Scientific Reports, 13(1), 2427.

Knaus, U., & Palm, H. W. (2017). Effects of the fish species choice on nutrients and microbial communities in aquaponic systems. Aquaculture International, 25, 2105–2120.

Kok, C. L., Kusuma, I. M. B. P., Koh, Y. Y., Tang, H., & Lim, A. B. (2024). Smart aquaponics: an automated water quality management system for sustainable urban agriculture. Electronics, 13(5), 820.

Kok, C.L., Kusuma, I.M.B.P., Koh, Y.Y., Tang, H., & Lim, A.B. 2024. Smart Aquaponics: An Automated Water Quality Management System for Sustainable Urban Agriculture. Electronics, 13, 820.

König, B., Junge, R., & Bittsanszky, A. (2018). On the sustainability of aquaponics: A literature review. Sustainability, 10(8), 2644.

Koops, H.-P., Pommerening-R¨oser, A., (2001). Distribution and ecophysiology of the nitrifying bacteria emphasizing cultured species. FEMS Microbiol. Ecol. 37, 1–9.

Kuebutornye, F.K.A., Abarike, E.D., Lu, Y., (2019). A review on the application of Bacillus as probiotics in aquaculture. Fish Shellfish Immunol. 87, 820–828

Lalloo, R., Moonsamy, G., Ramchuran, S., G¨orgens, J., Gardiner, N., (2010). Competitive exclusion as a mode of action of a novel Bacillus cereus aquaculture biological agent. Lett. Appl. Microbiol. 50, 563–570.

Learned, E. P., Christensen, C. R., Andrews, K. R., & Guth, W. D. (1965). Business Policy: Text and Cases. Homewood, IL: Richard D. Irwin.

Lennard, W. (2012). Aquaponic System Design Parameters: A Technical Manual for the Optimal Design of Aquaponic Systems.

Lennard, W. (2017). Commercial aquaponic systems: Integrating recirculating fish culture with hydroponic plant production. Black Rock, Victoria, Australia: Wilson Lennard.

Lennard, W. A. (2017). Aquaponic system design parameters: A practical review of the design, operation and application of integrated aquaculture and hydroponic systems. Aquaponic Solutions.

Lennard, W., & Leonard, B. V. (2006). A comparison of three different hydroponic sub-systems (gravel bed, floating and nutrient film technique) in an aquaponic test system. Aquaculture International, 14(6), 539–550.

Lennard, W., and Goddek, S. 2019. Aquaponics: The Basics. Aquaponics Food Production Systems. 113-143. https://doi.org/10.1007/978-3-030-15943-6.

Li, C., Lee, C. T., Gao, Y., Hashim, H., Zhang, X., Wu, W. M., & Zhang, Z. (2018). Prospect of aquaponics for the sustainable development of food production in urban. Chemical Engineering Transactions, 63, 475–480

Liang, J. Y., & Chien, Y. H. (2013). Effects of feeding frequency and photoperiod on water quality and crop production in a tilapia-water spinach raft aquaponics system. International Biodeterioration and Biodegradation, 85, 693–700

Limbong, D., Sari, E. N., & Situmorang, J. (2020). Budidaya Ikan Nila (Oreochromis niloticus) dalam Sistem Akuaponik. Jurnal Akuatik Tropis, 5(1), 45–55.

Love, D. C., Fry, J. P., Genello, L., Hill, E. S., Frederick, J. A., Li, X., & Semmens, K. (2015). An international survey of aquaponics practitioners. PLoS ONE, 10(7), e0133029.

Love, D. C., Fry, J. P., Genello, L., Hill, E. S., Frederick, J. A., Li, X., & Semmens, K. (2015). An international survey of aquaponics practitioners. PLoS ONE, 9(7), e102662. https://doi.org/10.1371/journal.pone.0102662

Love, D. C., Fry, J. P., Genello, L., Hill, E. S., Frederick, J. A., Li, X., & Semmens, K. (2015). An international survey of aquaponics practitioners. PLoS ONE, 10(7), e0133676.

Love, D. C., Fry, J. P., Genello, L., Hill, E. S., Frederick, J. A., Li, X., & Semmens, K. (2015). An international survey of aquaponics practitioners. PLoS ONE, 10(7), e0131692. https://doi.org/10.1371/journal.pone.0131692

Love, D. C., Fry, J. P., Genello, L., Hill, E. S., Frederick, J.A., Li, X. & Semmens, K. (2014). An international survey of aquaponics practitioners. PloS one, 9(7): e102662. https://doi.org/10.1371/journal.pone.0102662

Love, D. C., Fry, J. P., Li, X., Hill, E. S., Genello, L., Semmens, K., & Thompson, R. E. (2015a). Commercial aquaponics production and profitability: Findings from an international survey. Aquaculture, 435, 67–74. https://doi.org/10.1016/j.aquaculture.2014.09.023

Love, D. C., Uhl, M. S., & Genello, L. (2015b). Energy and water use of a small-scale raft aquaponics system in Baltimore, Maryland, United States. Aquacultural Engineering, 68, 19–27. https://doi.org/10.1016/j.aquaeng.2015.07.003

Mahmood, S.; Hussain, S.; Malik, F. (2013). Critique of medicinal conspicuousness of Parsley (Petroselinum crispum): A culinary herb of Mediterranean region. Pak. J. Pharm. Sci. 2013, 27, 193–202

Marschner, P. (2003). Mineral nutrition of higher plants. Amsterdam: Academic Press. Amsterdam

Matauli Aquaponics Research Team. (2025). Grafik Perbandingan Rata-rata FCR dan Laju Pertumbuhan Tiap Jenis Ikan Akuaponik [Gambar]. Sekolah Tinggi Perikanan dan Kelautan Matauli. Dokumentasi Penelitian Internal.

Maucieri, C., Nicoletto, C., Junge, R., Schmautz, Z., Sambo, P. & Borin, M. (2018). Hydroponic systems and water management in aquaponics: A review. Italian Journal of Agronomy, 13(1), 1-11

MC. Prov Riau. (2021). Ikan Patin (Pangasius sp).

Mohammed, E. A. H., Ahmed, A. E. M., Kovács, B., & Pál, K. (2025). The Significance of Probiotics in Aquaculture: A Review of Research Trend and Latest Scientific Findings. Antibiotics, 14(3), 242.

Mohapatra, S., Chakraborty, T., Kumar, V., DeBoeck, G., Mohanta, K.N., (2013). Aquaculture and stress management: a review of probiotic intervention. J. Anim. Physiol. Anim. Nutr. (Berl). 97, 405–430.

Mollison, B. & Holmgren, D. (1982). Permaculture one: a perennial agriculture for human settlements

Mollison, B., & Holmgren, D. (1981). Permaculture One: A Perennial Agricultural System for Human Settlements: International Tree Crop Institute USA

Mullins, C., Nerrie, B., Sink, T.D., & Beem, M. (2017). Principle of Small-Scale Aquaponics. Oklahoma State University, 1-7. https://extension.okstate.edu/fact-sheets/principles-of-small-scale-aquaponics.html#:~:text=In%20a%20simple%20aquaponic%20system,(depending%20on%20system%20design).

Mulqan, M., El Rahimi, S.A., & Dewiyanti, I. (2017). Pertumbuhan dan Kelangsungan Hidup Benih Ikan Nila Gesit (Orechromis niloticus) pada Sistem Akuaponik dengan Jenis Tanaman yang Berbeda. Jurnal Ilmiah Mahasiswa Kelautan dan Perikanan Unsyiah, 2(1), 183-193. https://jim.usk.ac.id/fkp/article/view/2566.

Mursito, I. D. (2023). Ikan Lele (Clarias sp.). Diakses dari https://www.kompasiana.com/iyuddwimursito

Nandy, S. (2020). Food for Urban Resilience in India. https://cityfarmer.info/wp-conte nt/uploa ds/2020/04/Food-for- Urban - Resil ience-in-India_Somdeep-Nandy_2019- 04-23-rev-3.pdf

Nasrullah, R., Yusuf, A., & Suryani, N. (2019). Produktivitas lele dalam sistem akuaponik horizontal. Jurnal Perikanan Terpadu, 15(1), 33–40.

Nayak SK. (2010). Probiotics and Immunity: A Fish Perspective. Fish and Shellfish Immunology. 29: 2-14.

Ngo-Hoang, D.L. (2023). Aquaponics Unveiled: Efficient Household Farming. Qeios. https://doi.org/10.32388/1A5IJR.

Nurfadilah, D., Hapsari, M. E., & Kusumawati, D. (2020). Efektivitas Budidaya Akuaponik Lele (Clarias sp.) dan Sawi (Brassica juncea L.) dalam Sistem Rakit Apung. Jurnal Akuakultur Tropis, 4(1), 45–52.

Nurhidayat, M., et al. (2021). Perbandingan performa hidrolik tangki silindris dan persegi panjang dalam sistem akuaponik tertutup. Jurnal Teknologi Akuakultur, 10(1), 33–42.

Odum, E. P. (1983). Basic Ecology. Saunders College Publishing.

Ogah, S. I., Kamarudin, M. S., Nurul-Amin, S. M., & Edaroyati, M. W. (2020). Nutrient recycling through aquaponics and night-lighting. Journal of Environmental Biology, 41(5), 1113–1125

Oladimeji, A. S., Olufeagba, S. O., Ayuba, V. O., Solomon, S. G. & Okomoda, V. T. (2020a). Effects of different growth media on water quality and plant yield in a catfish-pumpkin aquaponics system. Journal of King Saud University Science, 32(1), 60-66. https://doi.org/10.1016/j.jksus.2018.02.001

Oladimeji, S. A., Okomoda, V. T., Olufeagba, S. O., Solomon, S. G., Abol-Munafi, A. B., Alabi, K. I. & Hassan, A. (2020b). Aquaponics production of catfish and pumpkin: Comparison with conventional production systems. Food science & nutrition, 8(5), 2307-2315. https://doi.org/10.1002/fsn3.1512

Palm, H. W., Knaus, U., Appelbaum, S., Goddek, S., Strauch, S. M., Vermeulen, T., Haїssam Jijakli, M., & Kotzen, B. (2018). Towards commercial aquaponics: A review of systems, designs, scales and nomenclature. Aquaculture International, 26(3), 813–842. https://doi.org/10.1007/s10499-018-0249-z

Pan, W. B., & Zhuang, D. P. (1999). The development history and main models of fish farming in Chinese rice fields. Journal of Minxi Vocational University

Panjaitan, P. (2023). Pengaruh Level C: N Rasio Pakan terhadap Parameter Kualitas Air dan Parameter Biologi Pertumbuhan Udang Vaname (Litopenaeus vannamei) Dengan Model Budidaya Tanpa Pergantian Air Menggunakan Molases sebagai Sumber Carbon Organik. Jurnal AQUACULTURE Indonesia. 2(2). 131-143.

Phan, L. T., Bui, T. M., & Nguyen, T. H. (2021). Sustainability challenges and market prospects of Pangasius production in Vietnam: A review. Aquaculture International, 29, 1123–1140. https://doi.org/10.1007/s10499-021-00685-9

Piñero, M. C., Collado-González, J., Otálora, G., López-Marín, J., & del Amor, F. M. (2023). Plant Growth Promoting Bacteria for Aquaponics as a New Strategy That Grants Quality and Nutrient Efficiency in Kohlrabi Cultivation. Horticulturae, 9(12), 1299

Pitrianingsih, C., Suminto, & Sarjito. (2014). Pengaruh Bakteri Kandidat Probiotik Terhadap Perubahan Kandungan Nutrien C,N,P dan K Media Kultur Lele Dumbo (Clarias gariepinus). Journal of Aquaculture Management and Technology, 3(4), 247–256.

Prakoso, D., Hidayat, T., & Susanti, E. (2020). Reduksi Amonia dalam Sistem Akuaponik dan Dampaknya terhadap Produktivitas Ikan Nila. Jurnal Akuakultur Indonesia, 12(3), 105–115.

Pranoto, R., Nugraha, A. P., Fitri, T. N., Mariani, T., Sahidin, S., Adhila, S. P., Fitriyani, N., Ahmad Ramdan, N., Alifan, M. F., Nuraeni, D., & Prasetyo, Y. B. (2023). Pembibitan ikan nila dan tanaman pakcoy dengan sistem akuaponik di Desa Leles Kecamatan Leles Kabupaten Garut. Jurnal Pengabdian Sosial, 2(1), 1–10.

Prasetyo, A., Widodo, M. S., & Lestari, P. (2022). Analisis teknis dan ekonomi sistem akuaponik komersial tertutup di Yogyakarta. Jurnal Perikanan dan Kelautan Tropis, 14(3), 155–165.

Prasetyo, H., Kurniawan, T., & Santoso, B. (2021). Pengaruh Kadar Oksigen Terlarut terhadap Pertumbuhan dan Kelangsungan Hidup Ikan Nila. Jurnal Akuakultur Tropis, 9(1), 15–25.

Prastiwi, L.F., Wahyuningsih, R.D., Firmansyah, S.N., Nada, F., Nurwahidiyah, E.P., Billah, A.S., & Anwar, M.M. (2024). Sasimi: Sistem Aquaponik 5R untuk Mendukung Green Economy di Desa Sumberejo, Batu. Prosiding Hapemas, 4(1), 74-79. http://conference.um.ac.id/index.php/hapemas/article/view/9976.

Pratama, A., & Utomo, J. S. (2021). Manajemen Kesehatan Ikan dalam Sistem Akuaponik. Jurnal Perikanan dan Kelautan, 12(2), 112–121.

Prayogo, Rahardja. B. S., Agustono, and Amin, M. (2021). Growth Performance and Nutrient Composition of Mustard Green (Brassica juncea) cultured in Aquaponics Systems and Hydroponic System. Journal of Aquaculture and Fish Health. 10(3). 373-379

Pulvenis, J. F. (2016). Fisheries and aquaculture topics. The state of world fisheries and aquaculture (SOFIA). Topics fact sheets. Fisheries and Aquaculture Department

Purnama, D., Susilowati, T., & Nugroho, R. A. (2020). Efisiensi Air dan Nutrisi pada Akuaponik Berbasis Ikan Nila dan Lele. Jurnal Akuaponik Indonesia, 2(1), 25–36.

Putri, R. A., Subekti, S., & Handayani, T. (2021). Pengaruh Parameter Kualitas Air terhadap Tingkat Kelangsungan Hidup Ikan Nila dalam Sistem Akuaponik. Jurnal Ilmu Perikanan dan Kelautan, 10(1), 50–60.

Rahardja, B. S., Prayogo, P., Mahasri, G., & Hardhianto, M. D. (2010). Efektifitas Bakteri Pseudomonas Sebagai Pengurai Bahan Organik (Protein, Karbohidrat, Lemak) Pada Media Air Limbah Pembenihan Ikan Lele Dumbo (Clarias sp.) Sistem Resirkulasi Tertutup. Jurnal Ilmiah Perikanan dan Kelautan, 2(2), 159–164.

Rahayu, S., Kwaku, A., Huang, Y., Cai, J., Wang, B., Shija, V., Xiao, J., Anokyewaa, M., & Jiang, M. (2024). Probiotics application in aquaculture: Its potential effects, current status in China and future prospects. Frontiers in Marine Science, 11, 1455905.

Rakocy, J. E. (2012). Aquaponics-Integrating Fish and Plant Culture. Aquaculture Production Systems, 1, 343-386

Rakocy, J. E., Bailey, D. S., Shultz, R. C., & Thoman, E. S. (2006). Update on tilapia and vegetable production in the UVI aquaponic system. In Proceedings of the 2006 Annual Meeting of the Caribbean Food Crops Society (Vol. 42).

Rakocy, J. E., Bailey, D. S., Shultz, R. C., & Thoman, E. S. (2004). Update on tilapia and vegetable production in the UVI aquaponic system. Acta Horticulturae, 648, 63–69. https://doi.org/10.17660/ActaHortic.2004.648.8

Rakocy, J. E., et al. (2006). Recirculating Aquaculture Tank Production Systems: Aquaponics-Integrating Fish and Plant Culture. USDA.

Rakocy, J. E., Masser, M. P. & Losordo, T. M. (2006). Recirculating aquaculture tank production systems: Aquaponics-integrating fish and plant culture (p16). SRAC Publication-Southern Regional Aquaculture Center (454)

Rakocy, J. E., Masser, M. P., & Losordo, T. M. (2006). Recirculating aquaculture tank production systems: Aquaponics—integrating fish and plant culture. Southern Regional Aquaculture Center Publication, (454), 1-16.

Rakocy, J. E., Masser, M. P., & Losordo, T. M. (2006). Recirculating aquaculture tank production systems: Aquaponics—Integrating fish and plant culture (SRAC Publication No. 454).

Rakocy, J. E., Masser, M. P., & Losordo, T. M. (2020). Recirculating Aquaculture Tank Production Systems: Aquaponics—Integrating Fish and Plant Culture. Southern Regional Aquaculture Center (SRAC) Publication No. 454.

Rakocy, J., Shultz, R. C., Bailey, D. S. & Thoman, E. (2004). Aquaponic production of tilapia and basil: comparing a batch and staggered cropping system. In South Pacific Soilless Culture Conference SPSCC 648, 63-69. https://doi.org/10.17660/ActaHortic.2004.648.8

Ramadhani, N., Suryono, F., & Handayani, P. (2019). Peran Bakteri Nitrifikasi dalam Menurunkan Kadar Amonia pada Sistem Akuaponik. Jurnal Teknologi Akuakultur Berkelanjutan, 7(1), 45–55.

Ratnasih. 2014. Aquaponic Automation Prototype System Based on Internet of Things (IoT). Telecommunication Engineering. https://accessnet-telkom.firebaseapp.com/research/iot/ciat/ index.html.

Renaud, J., Thomas, J., & Gaudin, C. (2019). Effect of tank material on water chemistry in freshwater aquaculture systems. Aquaculture Reports, 15, 100265.

Resh, H. M. (2008). Hydroponic food production (4th ed.). Woodbridge Press Publishing Company

Resh, H. M. (2013). Hydroponic Food Production: A Definitive Guidebook for the Advanced Home Gardener and the Commercial Hydroponic Grower (7th ed.). CRC Press.

Ristiyana, S., Saputra, T.W., Purnamasari, I., & Wijayanto, Y. (2023). Penerapan Teknologi Akuaponik di Desa Sumberpakem Kecamatan Sumberjambe Kabupaten Jember. Jurnal Pengabdian Magister Pendidikan IPA, 6(4), 1366-1370. https://doi.org/10.29303/jpmpi.v6i4.6619.

Rizal, A., Dhahiyat, Y., Zahidah, Andriani, Y., Handaka, A.A., and Sahidin, A. (2018). The economic and social benefits of an aquaponic system for the integrated production of fish and water plants. ASEAN-FEN INTERNATIONAL FISHERIES SYMPOSIUM. doi :10.1088/1755-1315/137/1/012098

Rofiq, I.A., & Kopriyanto, K. (2024). Sistem Monitoring Kualitas Air Hidroponik di AABS Purwokerto Berbasis Website menggunakan Metode Prototipe. Jurnal Teknik Informatika Unis, 12(2), 157–165. https://doi.org/10.33592/jutis.v12i2.4782.

Roosta, H. R., & Hamidpour, M. (2011). Effects of foliar application of some macro- and micro-nutrients on tomato plants in aquaponic and hydroponic systems. Scientia Horticulturae, 129(3), 396–402. https://doi.org/10.1016/j.scienta.2011.04.006

Rozie, F., Syarif, I., Al Rasyid, M.U.H., & Satriyanto, E. (2021). Sistem Akuaponik untuk Peternakan Lele dan Tanaman Kangkung Hidroponik Berbasis IoT dan Sistem Inferensi Fuzzy. Jurnal Teknologi Informasi dan Ilmu Komputer, 8(1), 157-166. https://doi.org/10.25126/jtiik.0814025.

Ruth, M., & Hannon, B. (1997). Modeling Dynamic Economic Systems. Springer.

Sachs, J., Kroll, C., Lafortune, G., Fuller, G., & Woelm, F. (2022). Sustainable development report 2022. Cambridge University Press

Said, M., & Amin, M. (2018). Pengaruh media filter pada sistem resirkulasi air untuk pemeliharaan ikan koi (Cyprinus carpio L). Jurnal Akuakultur Indonesia, 17(1), 1–8. https://doi.org/10.19027/jai.17.1.1-8

Sánchez, H.J.A. (2014). Aquaponics and Its Potential Aquaculture Wastewater Treatment and Human Urine Treatment. Master's thesis, Universidade NOVA de Lisboa (Portugal).

Santana, A., Azam, F., Faria, R., & Oliveira, J. (2020). Plant Growth-Promoting Bacteria for Aquaponics: A Review. Journal of Agricultural Science, 12(11), 1-13.

Santikawati, D., & Sitinjak, B. M. (2022). Pengaruh Suhu terhadap Laju Pertumbuhan dan Kelangsungan Hidup Benih Ikan Nila. Jurnal Perikanan Tropis, 9(2), 112–120.

Sardare, M. D., & Admane, S. V. (2013). A review on plant without soil—Hydroponic. IJRET, 2(3), 299–304

Sari, R. P., & Widodo, S. 2020. Implementasi Sensor dan Otomasi dalam Sistem Akuaponik. Jurnal Teknologi Pertanian, 15(2), 112-120.

Schmautz, Z., Graber, A., Jaenicke, S., Goesmann, A., Junge, R., & Smits, T. H. M. (2017). Microbial diversity in different compartments of an aquaponics system. Archives of Microbiology, 199(4), 613–620. https://doi.org/10.1007/s00203-016-1334-1

Septriono, W. A., Indrian, F., Khoirunnisa, S., & Gultom, E. R. (2023). Penggunaan Mikroorganisme Akuatik Pada Proses Nitrifikasi di Tambak Udang (Litopeneaus vannamei). Jurnal Maiyah, 2(3).

Setyono, B.D.H., Wardani, D.K., Munaeni, W., Sari, Y.P., Panunggul, V.B., Yusra, S., Asri, Y.N., Putranto, A.H., & Fahmi, D.A. (2023). Akuaponic for Urban Farming “Mewujudkan Petani Inovatif 5.0”. CV. Tohar Media, Makassar.

Shabeer, M. S. (2016). Isolation and characterization bacteria related to aquaponics for testing its bio potential. B.Tech Biotechnology thesis, National Institute of Technology, Calicut, 60 p. http://dx.doi.org/10.13140/RG.2.1.4337.048

Shafahi, M., and Woolston, D. (2014). Aquaponics: A Sustainable Food Production System. ASME International Mechanical Engineering Congress and Exposition. https://doi.org/10.1115/IMECE2014-39441

Shah, A.N. (2020). Creating Business Model for Aquaponics Farm. Oulu University of Applied Sciences, Oulu. https://urn.fi/URN:NBN:fi:amk-2020101921421.

Shobihah, H.N., Yustiati, A., & Andriani, Y. (2022). Produktivitas Budidaya Ikan dalam Berbagai Konstruksi Sistem Akuaponik (Review). Jurnal Akuatika Indonesia, 7(1), 34-41. http://dx.doi.org/10.24198/jaki.v7i1.39441.

Siddiqui, M.H., and Al-Wabel, M.I. 2018. Aquaponics: Principles and practices. In: Siddiqui MH, Al-Wabel MI, editors. Controlled Environment Agriculture for Specialty Crop Production. Cham: Springer; 2018. p. 121–138.

Simanjuntak, M. S., & Sari, R. P. (2022). Budidaya ikan koi dalam sistem akuaponik untuk wisata edukasi. Jurnal Akuaponik dan Agrowisata, 1(2), 45–51.

Sirakov, I.; Lutz, M.; Graber, A.; Mathis, A.; Staykov, Y.; Smits, T.H.M.; Junge, R. Potential for Combined Biocontrol Activity against Fungal Fish and Plant Pathogens by Bacterial Isolates from a Model Aquaponic System. Water 2016, 8, 518

Soltani, M., Ghosh, K., Hoseinifar, S.H., Kumar, V., Lymbery, A.J., Roy, S., Ringø, E., 2019. Genus Bacillus, promising probiotics in aquaculture: aquatic animal origin, bio-active components, bioremediation and efficacy in fish and shellfish. Rev. Fish. Sci. Aquac. 1–49.

Somerville, C., Cohen, M., Pantanella, E., Stankus, A., & Lovatelli, A. (2014). Small-scale aquaponic food production: Integrated fish and plant farming (FAO Fisheries and Aquaculture Technical Paper No. 589). Rome: Food and Agriculture Organization of the United Nations (FAO).

Sonneveld, C., & Voogt, W. (2009). Nutrient management in substrate systems. In C. Sonneveld & W. Voogt (Eds.), Plant nutrition of greenhouse crops (pp. 277–312). Dordrecht: Springer. https://doi.org/10.1007/978-90-481-2532-6_13

Stathopoulou, P., Berillis, P., Levizou, E., Sakellariou-Makrantonak, M., Kormas, A.K., Angelaki, A., Kapsis, P., Vlahos, N., dan Mente, E. (2018). Basil and Nile tilapia Production in a Small Scale Aquaponic System. Journal of FisheriesSciences.com. 12(4): 001-003.

Stoyanova, S., Sirakov, I., & Velichkova, K. (2024). Sustainable Production: Integrating Medicinal Plants with Fish Farming in Aquaponics - A Mini Review. Sustainability, 16, 6337

Suhl, J., Dannehl, D., Kloas, W., Baganz, D., Jobs, S., Scheibe, G., & Schmidt, U. (2016). Advanced aquaponics: Evaluation of intensive tomato production in aquaponics vs. conventional hydroponics. Agricultural Water Management, 178, 335–344. https://doi.org/10.1016/j.agwat.2016.10.013

Sukmawan, B.A., Aripriharta, Zaeni, I.A.E., Faiz, M.R., Susilo, S.W., & Rahmadhani, N.A.S. 2025. Implementasi Smart Akuaponik dengan IoT untuk Pertanian Perkotaan yang Efisien. Jurnal Informatika dan Teknik Elektro Terapan, Vol. 13 No. 2.

Sumule, J. F., D. T. Tobigo., Rusaini. 2017. Aplikasi Probiotik Pada Media Pemeliharaan Terhadap Pertumbuhan Dan Sintasan Ikan Nila Merah (Orechromis sp.). J. Agibisnis.

Sunardi, A., Suud, F.I., Woro, A.N., & Gunawan, I. 2018. IoT Application on Aquaponics System Energy Optimization. Journal of Physics. doi:10.1088/1742-6596/1772/1/012046.

Sungkar, M. (2015). Akuaponik Ala Mark Sungkar. PT AgroMedia Pustaka, Jakarta.

Supajaruwong, S.,Satanwat, S., Pungrasmi, W., and Powtongsook, S. (2020). Design and function of a nitrogen and sediment removal system in a recirculating aquaculture system optimized for aquaponics. Environmental Engineering Research. 26(2): 190494.

Surur, M.A., Ulwiyah, Saadah, U., Rahmatika, S.D., & Rusmadi. (2021). Akuaponik untuk Kemandirian dan Ketahanan Pangan di Pesantren Al Ishlah Mangkangkulon Semarang. Indonesian Journal Of Community Service, 1(3), 606-613. http://ijocs.rcipublisher.org/index.php/ijocs/article/view/95.

Susanto, M. H., Priyanto, B. E., & Kurniawan, D. (2020). Karakteristik pertumbuhan ikan mas (Cyprinus carpio) dalam sistem akuaponik dengan berbagai jenis tanaman. Jurnal Ilmu Perikanan Indonesia, 26(3), 159–166.

Sutrisno, I., Subagja, J., & Riyanto, B. (2021). Pengaruh Kadar Amonia terhadap Kelangsungan Hidup Ikan Nila. Jurnal Akuakultur Tropika, 9(1), 65–72.

Swardiani, N. P. I., Swasta, I. B. J., Amelia, J. M., & Antara, K. L. (2022). Studi Perbandingan Kualitas Air Pada Sistem Resirkulasi Antara Sistem Yang Menggunakan Tanaman Kangkung Dan Tanpa Tanaman Kangkung Dilihat Dari Variabel Amonia (NH3), Nitrit (NO2), Nitrat (NO3). Journal Perikanan, 12(3), 355–364.

Syahroni, Y. (2014). Ikan Mas (Cyprinus carpio) [Foto]. Diakses dari dokumentasi pribadi/Sumber internal.

Syamsuddin, R. 2014. Pengelolaan Kualitas Air Teori dan Aplikasi di Sektor Perikanan. Cetakan Pertama. Pijar Press. Katalog Dalam Terbitan. 340 hlm

Tajudeen, A. L., & Taiwo, O. S. (2018). Soilless farming – A key player in the realisation of “zero hunger” of the sustainable development goals in Nigeria. International Journal of Ecology and Environmental Sciences, 5, 1–7. ISSN: 2375-3854

Tetik, F.; Civelek, S.; Cakilcioglu, U. Traditional uses of some medicinal plants in Malatya (Turkey). J. Ethnopharmacol. 2013, 146, 331–346

Timmons, M. B., & Ebeling, J. M. (2010). Recirculating Aquaculture. Ithaca, NY: Cayuga Aqua Ventures

Timmons, M. B., & Ebeling, J. M. (2010). Recirculating aquaculture (2nd ed.). NRAC Publication, Ithaca.

Timmons, M. B., & Ebeling, J. M. (2013). Recirculating Aquaculture. 2nd Edition. Cayuga Aqua Ventures.

Timmons, M. B., & Ebeling, J. M. (2013). Recirculating Aquaculture (3rd ed.). Ithaca, NY: Cayuga Aqua Ventures.

Timmons, M. B., & Ebeling, J. M. (2013). Recirculating Aquaculture. Ithaca Publishing Company.

Timmons, M. B., Guerdat, T., & Vinci, B. J. (2018). Recirculating Aquaculture, 4th edition

Todd, J. (1980). Dreaming in my own backyard. The Journal of the New Alchemists 6: 108–111

Trimpert, J.; Eichhorn, I.; Vladimirova, D.; Haake, A.; Schink, A.-K.; Klopfleisch, R.; Lübke-Becker, A. Elizabethkingia miricola infection in multiple anuran species. Transbound. Emerg. Dis. 2021, 68, 931–940

Triyanto, T., Susanti, R., & Mustofa, I. (2022). Manajemen kualitas air pada sistem akuaponik menggunakan ikan patin dan tanaman sawi. Jurnal Perikanan dan Kelautan, 27(1), 55–62. https://doi.org/10.14710/jpk.27.1.55-62

Tyson, R. V., Treadwell, D. D., & Simonne, E. H. (2004). Opportunities and challenges to sustainability in aquaponic systems. HortTechnology, 14(3), 491–495.

Tyson, R. V., Treadwell, D. D., & Simonne, E. H. (2011). Opportunities and challenges to sustainability in aquaponic systems. HortTechnology, 21(1), 6–13. https://doi.org/10.21273/HORTTECH.21.1.6

Verdegem, M. C. J., Bosma, R. H., & Verreth, J. A. J. (2006). Reducing water use for animal production through aquaculture. International Journal of Water Resources Development, 22(1), 101–113.

Wahyuningsih, S., Handayani, S., & Sari, M. P. (2020). Pengaruh padat tebar terhadap pertumbuhan ikan nila (Oreochromis niloticus) dalam sistem akuaponik. Jurnal Akuakultur Indonesia, 19(3), 210–218.

Wang, J. W. & Gao, Y. L. (2017). Aquaponics experiment in pond. Scientific Fish Farming ,000(008), 20-20

Wang, Y., Yang, Y., & Lu, J. (2024). A review of aquaponics; concept, curretns situation and development. International Journal of Agriculture and Natural Resources, 51(3): 140-156

Wedemeyer, G. A. (1996). Physiology of Fish in Intensive Culture Systems. Springer.

Wee, W.C., Mok, C.H., Romano, N., Ebrahimi, M., Natrah, I., (2018). Dietary supplementation use of Bacillus cereus as quorum sensing degrader and their effects on growth performance and response of Malaysian giant river prawn Macrobrachium rosenbergii juvenile towards Aeromonas hydrophila. Aquac. Nutr. 24, 1804–1812.

Wei, Q.; Wang, D.; Wei, K.; Xu, B.; Xu, J. (2024). The Mechanism of Elizabethkingia miricola Infection of the Black Spotted Frog as Revealed by Multi-Omics Analysis. Fishes 2024, 9, 91

White, F. M. (2011). Fluid Mechanics (7th ed.). McGraw-Hill.

Wibowo, A., & Sari, D. (2021). Pengembangan Model Akuaponik Berbasis Ikan Koi untuk Skala Rumah Tangga. Yogyakarta: Penerbit AgroMedia.

Wibowo, A., Nugraha, R., & Haryanto, T. (2019). Efisiensi Sistem Akuaponik dalam Menjaga Kadar Oksigen Terlarut dan Pertumbuhan Ikan Nila (Oreochromis niloticus). Jurnal Teknologi Perikanan dan Kelautan, 7(3), 89–98.

Widodo, Y.B., Gunawan. A., dan Sutabri, T. (2022). Perancangan Sistem Monitoring Nutrisi pada Tanaman Hidroponik Berbasis Arduino Uno. Jurnal Teknologi Informatika dan Komputer. 8(1).200-214.

Wong Kiew, S., Hu, Z., Chandran, K., Lee, J. W., & Khanal, S. K. (2017). Aquaponic systems for sustainable resource recovery: Linking nitrogen transformations to microbial ecology. Critical Reviews in Environmental Science and Technology, 47(22), 1996–2040.

Wongkiew, S., Hu, Z., Chandran, K., Lee, J. J., & Khanal, S. K. (2017). Aquaponic systems for sustainable resource recovery: Linking nitrogen transformations to microbial communities. Environmental Science & Technology, 51(1), 110–118. https://doi.org/10.1021/acs.est.6b03881

Yang, P.; Zheng, Y.; Aweya, J.J.; Zou, X.; Lin, M.; Liu, Y.; Zhang, Z.; Sun, Y.; Wang, H. iTRAQ-based comparative proteomic analysis of the Lithobates catesbeianus bullfrog spleen following challenge with Citrobacter freundii. Aquac. Rep. 2022, 23, 2352–5134

Yep, B., & Boyd, C. E. (2021). Current Environmental Issues in Recirculating Aquaculture Systems. Reviews in Aquaculture, 13(1), 432–449.

Yep, B., & Zheng, Y. (2019). Aquaponic trends and challenges – A review. Journal of Cleaner Production, 228, 1586–1599. https://doi.org/10.1016/j.jclepro.2019.04.290

Yi, Y., Zhang, Z., Zhao, F., Liu, H., Yu, L., Zha, J., Wang, G., 2018. Probiotic potential of Bacillus velezensis JW: antimicrobial activity against fish pathogenic bacteria and immune enhancement effects on Carassius auratus. Fish Shellfish Immunol. 78, 322–330.

Yildiz, H. Y., Robaina, L., Pirhonen, J., Mente, E., Domínguez, D., & Parisi, G. (2017). Fish welfare in aquaponic systems: Its relation to water quality with an emphasis on feed and faeces–A review. Water, 9(1), 13.

Yildiz, H.Y., Bekcan, S. International Journal of Environment, (2017). Role of stocking density of tilapia (Oreochromis aureus) on fish growth, water quality and tomato (Solanum lycopersicum) plant biomass in the aquaponic system. Agriculture and Biotechnology (IJEAB). 2(6). pp.2819-2824

Yulianto, B., Setiawan, H., & Prabowo, D. S. (2022). Analisis pertumbuhan dan efisiensi pakan ikan lele (Clarias sp.) pada sistem akuaponik skala rumah tangga. Jurnal Akuakultur Indonesia, 21(1), 45–53.

Yunus, M., Abdullah, A., & Junaedi, A. (2022). Manajemen Kepadatan Ikan dalam Sistem Akuaponik. Jurnal Akuaponik Tropis, 3(1), 15–24.

Yustina, Y., Nurhidayati, N., & Novianty, R. (2020). Penerapan sistem akuaponik sebagai alternatif ketahanan pangan rumah tangga di masa pandemi COVID-19. Jurnal Pengabdian Kepada Masyarakat, 4(2), 123–130.

Zhang, D. Q., et al. (2014). "Application of constructed wetlands for wastewater treatment in developing countries – A review of recent developments." Journal of Environmental Management, 141, 116–131.

Zokaeifar, H., Babaei, N., Saad, C.R., Kamarudin, M.S., Sijam, K., Balcazar, J.L., 2014. Administration of Bacillus subtilis strains in the rearing water enhances the water quality, growth performance, immune response, and resistance against Vibrio harveyi infection in juvenile white shrimp, Litopenaeus vannamei. Fish Shellfish Immunol. 36, 68–74.

Zorriehzahra, M.J., Delshad, S.T., Adel, M., Tiwari, R., Karthik, K., Dhama, K., Lazado, C. C., 2016. Probiotics as beneficial microbes in aquaculture: an update on their multiple modes of action: a review. Vet. Q. 36, 228–241.

Zulfahmi, R., Anwar, F., & Ramadhan, D. (2020). Budidaya ikan koi dan nilai ekonominya dalam sistem akuaponik. Jurnal Ekonomi Perikanan, 4(1), 66–72.

Zulfikar, Muslih, A., Nisak, K., & Fitria, A. (2021). Pelatihan Pembuatan Aquaponik Sederhana untuk Pengoptimalan Lahan Sempit di Desa Pulorejo Kecamatan Tembeleng. Jumat Pertanian: Jurnal Pengabdian Masyarakat, 2(3), 144-149. https://ejournal.unwaha.ac.id/index.php/abdimasper/article/download/2287/997/6853.

Zweig, R. D. (1986). An Integrated Fish Culture Hydroponic Vegetable Production System. Aquaculture Magazine, 12(3), 34-40

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2025-09-07