Synthesis and Characterization of Carrageenan-Chitosan Milkfish Scales-Based Hydrogel for Slow-Release Fertilizer

Asri Azizah, Diana Triyanti, Putri Sahira, Anisa Putri, Retno Sulistyo Dhamar Lestari, Jayanudin jayanudin

Abstract

This study aims to develop a superabsorbent hydrogel as a slow-release fertilizer based on a combination of carrageenan-glucomannan and carrageenan-chitosan derived from milkfish (Chanos chanos) scale waste. The hydrogel was synthesized by chemical crosslinking with glutaraldehyde concentrations of 2%, 4%, 6%, and 8%. Hydrogel characterization included swelling ratio tests, gel fraction analysis, Fourier Transform Infrared (FTIR), Scanning Electron Microscopy (SEM), urea absorption (Xo), and urea release kinetics in both aqueous and soil media. The results indicate that a 8% glutaraldehyde concentration yielded optimal performance in both hydrogel systems, achieving the highest gel fractions (>90%) and maximum urea absorption capacities of 8.05 g/g for carrageenan-glucomannan and 13.31 g/g for carrageenan-chitosan. The carrageenan-glucomannan hydrogel exhibited a higher swelling ratio of 630% at 2% glutaraldehyde concentration and slower urea release in soil, ranging from 0.192% to 4.113% over 7 days. In contrast, the carrageenan-chitosan hydrogel demonstrated stronger chemical affinity for urea but released it more rapidly, ranging from 1.037% to 7.092% over the same period. SEM and FTIR analyses confirmed the formation of a three-dimensional network structure and chemical interactions among the components.

Keywords

carrageenan; chitosan; controlled release fertilizer; glucomannan, superabsorbent hydrogel.

References

Adi, S.H., and Heryani, N., 2020. Sintesis, Pengujian, dan Karakterisasi Hidrogel Berbasis Sodium Carboxymethyl Cellulose dan Chitosan. Widyariset, 5, 1. https://doi.org/10.14203/widyariset.5.1.2019.1-10.

Azeem, B., KuShaari, K., Man, Z.B., Basit, A., and Thanh, T.H., 2014. Review on Materials & Methods to Produce Controlled Release Coated Urea Fertilizer. Journal of Controlled Release, 181, 11–21. https://doi.org/https://doi.org/10.1016/j.jconrel.2014.02.020.

BPS, 2021. Badan Pusat Statistika Nasional. 2021. Penduduk 15 Tahun ke atas yang Bekerja menurut Lapangan Pekerjaan Utama 2011 – 2021.

BPS, 2020. Badan Pusat Statistik Provinsi Banten 2020. Provinsi Banten dalam Angka. Serang (ID): BPS Provinsi Banten.

Chang, C., Duan, B., Cai, J., and Zhang, L., 2010. Superabsorbent Hydrogels Based on Cellulose for Smart Swelling and Controllable Delivery. European Polymer Journal, 46, 92–100. https://doi.org/10.1016/j.eurpolymj.2009.04.033.

Chen, J., Lü, S., Zhang, Z., Zhao, X., Li, X., Ning, P., and Liu, M., 2018. Environmentally Friendly Fertilizers: A Review of Materials Used and Their Effects on the Environment. Science of the total environment, 613, 829–839.

Costa, P., and Lobo, J.M.S., 2001. Modeling and Comparison of Dissolution Profiles. European Journal of Pharmaceutical Sciences, 13, 123–133. https://doi.org/https://doi.org/10.1016/S0928-0987(01)00095-1.

Dash, S., Murthy, P., Nath, L., and Chowdhury, P., 2010. Kinetic Modeling on Drug Release from Controlled Drug Delivery Systems. Acta Poloniae Pharmaceutica, 67, 20524422.

Dipahayu, D., and Kusumo, G.G., 2020. Optimasi Ekstraksi Konjac Glukomanan dari Umbi Porang (Amorphophallus muelleri Blume) dengan Variasi Perbandingan Serbuk Umbi Porang: Aquadest (Pelarut) dan Suhu. Prosiding SNITT POLTEKBA, 4, 466–469.

Distantina, S., Rahayu, F., and Zalfa, T.H.G., 2018. Bead Gel Dari Karagenan-Carboxymethylcellulose Dengan Crosslinking Glutaraldehid Sebagai Controlled Release Urea, in: Seminar Nasional Teknik Kimia" Kejuangan". pp. K5–K5.

Distantina, S., Santoso, S.A., and Citrawati, M., 2020. The Urea Release Rate of Bead Gel Based on Kappa Carrageenan, Pectin, and Glucomannan, in: AIP Conference Proceedings. AIP Publishing.

Dozie-Nwachukwu, S.O., Danyuo, Y., Obayemi, J.D., Odusanya, O.S., Malatesta, K., and Soboyejo, W.O., 2017. Extraction and Encapsulation of Prodigiosin in Chitosan Microspheres for Targeted Drug Delivery. Materials Science and Engineering: C, 71, 268–278. https://doi.org/https://doi.org/10.1016/j.msec.2016.09.078.

Erizal, E., Perkasa, D.P., Sudirman, S., Juniarti, Z., and Hariyanti, H., 2017. Sintesis dan Karakterisasi Biodegradabel Hidrogel Superabsorben Poli (Kalium Akrilat)-g-Glukomanan dengan Teknik Iradiasi Gamma. Indonesian Journal of Materials Science, 19, 223323.

Ferdiansyah, R., Chaerunisaa, A.Y., and Addassah, M., 2017. Karakterisasi Kappa Karagenan dari Eucheuma cottonii Asal Perairan Kepulauan Natuna dan Aplikasinya sebagai Matriks Tablet Apung. Jurnal Sains Dan Teknologi Farmasi Indonesia, 6.

Guo, Liu, Zhan, and Wu, L., 2005. Preparation and Properties of a Slow-Release Membrane-Encapsulated Urea Fertilizer with Superabsorbent and Moisture Preservation. Industrial & Engineering Chemistry Research, 44, 4206–4211. https://doi.org/10.1021/ie0489406.

Hassan, C.M., and Peppas, N.A., 2000. Structure and Applications of Poly(Vinyl Alcohol) Hydrogels Produced by Conventional Crosslinking or by Freezing/Thawing Methods, in: Biopolymers · PVA Hydrogels, Anionic Polymerisation Nanocomposites. Springer Berlin Heidelberg, Berlin, Heidelberg, pp. 37–65. https://doi.org/10.1007/3-540-46414-X_2.

Hekmat, A., Barati, A., Frahani, E.V., and Afraz, A., 2009. Synthesis and Analysis of Swelling and Controlled Release Behaviour of Anionic SIPN Acrylamide Based Hydrogels. World Academy of Science, Engineering and Technology, 56, 96.

Hoffman, A.S., 2012. Hydrogels for Biomedical Applications. Advanced Drug Delivery Reviews, 64, 18–23. https://doi.org/https://doi.org/10.1016/j.addr.2012.09.010.

Jayanudin, Fahrurrozi, Moh., Wirawan, S.K., and Rochmadi, 2019a. Mathematical Modeling of the Red Ginger Oleoresin Release from Chitosan-Based Microcapsules Using Emulsion Crosslinking Method. Engineering Science and Technology, an International Journal, 22, 458–467. https://doi.org/https://doi.org/10.1016/j.jestch.2018.11.008.

Jayanudin, Fahrurrozi, Moh., Wirawan, S.K., and Rochmadi, 2019b. Antioxidant Activity and Controlled Release Analysis of Red Ginger Oleoresin (Zingiber officinale Var Rubrum) Encapsulated in Chitosan Cross-Linked by Glutaraldehyde Saturated Toluene. Sustainable Chemistry and Pharmacy, 12, 100132. https://doi.org/https://doi.org/10.1016/j.scp.2019.100132.

Jayanudin, J., and Lestari, R.S.D., 2020. Enkapsulasi dan Karakterisasi Pelepasan Terkendali Pupuk NPK Menggunakan Kitosan yang Ditaut Silang dengan Glutaraldehida. ALCHEMY Jurnal Penelitian Kimia, 16, 110. https://doi.org/10.20961/alchemy.16.1.34711.110-125.

Kaya, A.O.W., Suryani, A., Santoso, J., Meika, D., Rusli, S., 2014. Karakteristik dan Struktur Mikro Gel Campuran Semirefined Carrageenan dan Glukomanan. Jurnal Kimia dan Kemasan, 37, 19–28.

Kusuma, V. R. A. G., Syahputraningrat, G. R., Rahman, H. M., and Fadilah, F., 2022. Pemanfaatan Polimer Alam Kappa-Karagenan dan Glukomanan untuk Mikroenkapsulasi Extra Virgin Olive Oil. Equilibrium Journal of Chemical Engineering, 6. https://doi.org/10.20961/equilibrium.v6i1.58249.

Lestary, R.A., Jazlina, L.N., and Distantina, S., 2018. Bead Gel sebagai Controlled Release Urea: Pengaruh Konsentrasi Crosslinker Glutaraldehid. CHEMICA: Jurnal Teknik Kimia, 5, 13. https://doi.org/10.26555/chemica.v5i1.9694.

Li, C., Hein, S., and Wang, K., 2013. Chitosan-Carrageenan Polyelectrolyte Complex for the Delivery of Protein Drugs. ISRN Biomaterials, 2013, 1–6. https://doi.org/10.5402/2013/629807.

Nasution, P.S., Hamimdal, M.A., Syahbirin, G., and Arifin, B., 2019. Optimalisasi Sifat Reologi Hidrogel Kitosan-Hialuronat yang Ditaut-Silang dengan Glutaraldehida. ALCHEMY Jurnal Penelitian Kimia, 15, 24–43. https://doi.org/10.20961/alchemy.15.1.22536.24-43.

Oyediran, K.O., Cardoso-Daodu, I.M., Bassey, P.O.O., Ogundemuren, D.A., Azubuike, C.P., Agarwal, R., Haritha, K., and Ilomuanya, M.O., 2025. Tenofovir/Cyanovirin-N Hydrogel Formulations: An Investigation Into Rheology, Drug Release Kinetics and Mucoadhesive Properties. Tropical Journal of Natural Product Research, 9, 4167–4181. https://doi.org/10.26538/tjnpr/v9i9.14.

Patel, K.S., and Patel, M.B., 2014. Preparation and Evaluation of Chitosan Microspheres Containing Nicorandil. International Journal of Pharmaceutical Investigation, 4, 32.

Ritger, P.L., and Peppas, N.A., 1987. A Simple Equation for Description of Solute Release I. Fickian and Non-Fickian Release from Non-Swellable Devices in the Form of Slabs, Spheres, Cylinders or Discs. Journal of Controlled Release, 5, 23–36. https://doi.org/https://doi.org/10.1016/0168-3659(87)90034-4.

Savana, R.T., 2018. Analisis Komposisi Unsur Pupuk Lepas Lambat Kitosan-Silika-Glutaraldehidelement Composition Analysis Chitosan-Silica-Glutaraldehyde Slow Release Fertilizer. Unesa Journal of Chemistry, 7.

Siepmann, J., and Peppas, N.A., 2001. Modeling of Drug Release from Delivery Systems Based on Hydroxypropyl Methylcellulose (HPMC). Advanced Drug Delivery Reviews, 48, 139–157. https://doi.org/https://doi.org/10.1016/S0169-409X(01)00112-0.

Trenkel, M.E., 1997. Controlled-Release and Stabilized Fertilizers in Agriculture. International Fertilizer Industry Association, Paris.

Triyanti, D., Jumantika, I., and Kholiq, A., 2022. (Ashik Liquid Fertilizer) Optimalisasi Limbah Fly Ash PLTU Suralaya dan Kitosan Sisik Ikan Bandeng sebagai Pupuk Cair Ramah Lingkungan Guna Mendukung Program Eco-Industrial Park serta Menyukseskan SDGs 2030. Jurnal Ilmiah Penalaran dan Penelitian Mahasiswa, 6, 101–108.

Wu, H., Bu, N., Chen, J., Chen, Y., Sun, R., Wu, C., and Pang, J., 2022. Construction of Konjac Glucomannan/Oxidized Hyaluronic Acid Hydrogels for Controlled Drug Release. Polymers, 14. https://doi.org/10.3390/polym14050927.

Wu, L., Liu, M., and Rui Liang, 2008. Preparation and Properties of a Double-Coated Slow-Release NPK Compound Fertilizer with Superabsorbent and Water-Retention. Bioresource Technology, 99, 547–554. https://doi.org/https://doi.org/10.1016/j.biortech.2006.12.027.

Yegappan, R., Selvaprithiviraj, V., Amirthalingam, S., and Jayakumar, R., 2018. Carrageenan Based Hydrogels for Drug Delivery, Tissue Engineering and Wound Healing. Carbohydrate Polymers, 198, 385–400. https://doi.org/https://doi.org/10.1016/j.carbpol.2018.06.086.

Yu, W., Yuan, L.W., and Xin, J.H., 2011. Gel Properties of K-Carrageenan and Synergistic Effect of k-Carrageenan and Konjac Gum. Advanced material research, 398, 1389–1393.

Zhang, C., Chen, J., and Yang, F., 2014. Konjac Glucomannan, a Promising Polysaccharide for OCDDS. Carbohydrate Polymers, 104, 175–181. https://doi.org/https://doi.org/10.1016/j.carbpol.2013.12.081.

Refbacks

  • There are currently no refbacks.