Biodegradable films from cocoa husk-derived cellulose with kappa and iota-carrageenan formulations Film biodegradabel berbasis selulosa kulit kakao dengan formulasi kappa dan iota-karaginan

Haidawati (1) , Esa Ghanim Fadhallah (2) , Muhammad Ridho Al Farizi (2) , Meilia Ardana (2) , Az Zahra Firdaus Syachputri (2) , Nessa Maharani (2)
(1) Department of Agricultural Product Technology, Universitas Lampung, Indonesia,
(2) Department of Agricultural Product Technology, Faculty of Agriculture, Universitas Lampung, Indonesia

Abstract

The extensive use of conventional plastic packaging has raised environmental concerns due to its non-biodegradable nature, encouraging the development of biodegradable materials from renewable resources. Cocoa pod husks, an abundant agricultural by-product, are a promising source of cellulose for biodegradable film production. Kappa (κ-) and iota (ι-) carrageenans are widely used as matrix materials to improve the film-forming properties. This study investigated the characteristics of biodegradable packaging films produced from cocoa pod husk-derived cellulose combined with κ- and ι-carrageenan. Films were produced using the solution casting method with eight different formulations of cellulose, κ-carrageenan, and ι-carrageenan. The films were characterized by (FTIRr-transform infrared spectroscopy (FTIR), X-Ray Diffraction (XRD), thickness, tensile strength, elongation at break, Young’s modulus, swelling, and water vapor transmission rate (WVTR). Cellulose incorporation generally increased film thickness and reduced tensile strength compared to carrageenan-based films, while lowering the WVTR in selected formulations. Films containing higher proportions of ι-carrageenan exhibited the greatest elongation and the highest water absorption. The swelling values ranged from 159.50% to 473.23%, whereas the WVTR ranged from 1.14 to 5.43 g/m²/24 h. Increasing the cellulose content generally reduced the WVTR, reflecting the improved water vapor barrier properties associated with higher crystallinity. All cellulose-containing films satisfied the minimum tensile strength requirement specified in JIS Z 1707, although their elongation remained within the poor-to-moderately good category. Overall, biodegradable films formulated from cocoa pod husk cellulose with κ- and ι-carrageenan demonstrate promising potential as sustainable and environmentally friendly food packaging materials.

Full text article

Generated from XML file

References

Abdo, N. I., Tufik, Y. M., & Abobakr, S. M. (2023). A comparison of nano-celluloses prepared with various terms of time and sulfuric acid concentration from bagasse derived cellulose: physicochemical characteristics and process optimization. Current Research in Green and Sustainable Chemistry, 6, 100365. https://doi.org/10.1016/J.CRGSC.2023.100365

Amrillah, N. A. Z., Hanum, F. F., Rahayu, A., Hapsari, A. B., & Nuraini. (2024). Optimization and characterization cellulose content of cocoa pod husk from cocoa fermentation center in Gunung Kidul Regency, Indonesia through the extraction process. Sains Natural: Journal of Biology and Chemistry, 14(2), 81–90. https://doi.org/10.31938/JSN.V14I2.703

Argel-Pérez, S., Velásquez-Cock, J., Zuluaga, R., & Gómez-Hoyos, C. (2024). Improving hydrophobicity and water vapor barrier properties in paper using cellulose nanofiber-stabilized cocoa butter and PLA emulsions. Coatings, 14(10), 1310. https://doi.org/10.3390/coatings14101310

Arshad, M. T., Hassan, S., Shehzadi, R., Sani, M. A., Ikram, A., Maqsood, S., Ahmad, A., Hussain, M. F., Abdullah, Z., & Gnedeka, K. T. (2025). Emerging trends in sustainable packaging of food products: an updated review. Journal of Natural Fibers, 22(1). https://doi.org/10.1080/15440478.2025.2505608;JOURNAL:JOURNAL:WJNF20

Asadzadeh, N., Ghorbanpour, M., & Sayyah, A. (2023). Effects of filler type and content on mechanical, thermal, and physical properties of carrageenan biocomposite films. International Journal of Biological Macromolecules, 253, 127551. https://doi.org/10.1016/j.ijbiomac.2023.127551

[ASTM] American Society for Testing and Materials. (2017). ASTM E96: Standard Test Methods for Water Vapor Transmission of Materials (ASTM E96-0, Vol. 08). ASTM. https://doi.org/10.1520/E0096-00

[ASTM] American Society for Testing and Materials. (2022). ASTM D570: Standard Test Method for Water Absorption of Plastics. ASTM International. https://doi.org/10.1520/D0570-22.2

Barbosa, C. H., Andrade, M. A., Vilarinho, F., Fernando, A. L., Silva, A. S., & Silva, F. J. G. (2021). Active edible packaging. Encyclopedia, 1(2), 360–370. https://doi.org/10.3390/ENCYCLOPEDIA1020030

Bhat, K. M., Sharma, A., Rao, N. N., & Biotechnology student, B. (2020). Carrageenan-based edible biodegradable food packaging: A review. International Journal of Food Science and Nutrition, 5, 2455–4898. https://www.researchgate.net/publication/344016334

Bhatia, S., Abbas Shah, Y., Al-Harrasi, A., Jawad, M., Koca, E., & Aydemir, L. Y. (2024). Enhancing tensile strength, thermal stability, and antioxidant characteristics of transparent kappa carrageenan films using grapefruit essential oil for food packaging applications. ACS Omega, 9(8), 9003–9012. https://doi.org/10.1021/ACSOMEGA.3C07366/ASSET/IMAGES/LARGE/AO3C07366_0006.JPEG

[BPS] Badan Pusat Statistik. (2022). Produksi Tanaman Perkebunan (ton). https://kalsel.bps.go.id/indicator/55/172/1/produksi-tanaman-sayur-sayuran.html%0Ahttps://www.bps.go.id/linkTableDinamis/view/id/960.

Chawla, R., Sivakumar, S., & Kaur, H. (2021). Antimicrobial edible films in food packaging: Current scenario and recent nanotechnological advancements- a review. Carbohydrate Polymer Technologies and Applications, 2, 100024. https://doi.org/10.1016/J.CARPTA.2020.100024

Cheng, C., Chen, S., Su, J., Zhu, M., Zhou, M., Chen, T., & Han, Y. (2022). Recent advances in carrageenan-based films for food packaging applications. Frontiers in Nutrition, 9, 1004588. https://doi.org/10.3389/FNUT.2022.1004588

Cheng, J., Gao, R., Zhu, Y., & Lin, Q. (2024). Applications of biodegradable materials in food packaging: A review. Alexandria Engineering Journal, 91, 70–83. https://doi.org/10.1016/J.AEJ.2024.01.080

Dhilipkumar, T., Sadeq, A. M., Karuppusamy, P., Shankar, K. V., Murali, A. P., Darem, A. A., Selvakumar, K., & Giri, J. (2025). Exploring recent advances in carrageenan-based films for sustainable food packaging applications. European Food Research and Technology, 251(10), 3151–3173. https://doi.org/10.1007/S00217-025-04835-6

Dmitrenko, M., Kuzminova, A., Cherian, R. M., Joshy, K. S., Pasquini, D., John, M. J., Hato, M. J., Thomas, S., & Penkova, A. (2023). Edible carrageenan films reinforced with starch and nanocellulose: Development and characterization. Sustainability (Switzerland), 15(22). https://doi.org/10.3390/su152215817

Eslami, Z., Elkoun, S., Robert, M., Adjallé, K., Eslami, Z., Elkoun, S., Robert, M., & Adjallé, K. (2023). A review of the effect of plasticizers on the physical and mechanical properties of alginate-based films. Molecules, 28(18). https://doi.org/10.3390/MOLECULES28186637

Fadhallah, E. G., Zuidar, A. S., Hidayati, S., Haidawati, Dameswary, A. H., & Ramadhani, A. T. (2025). Development of sustainable bioplastic composite films from cocoa pod husk waste cellulose and kappa-carrageenan. Caraka Tani: Journal of Sustainable Agriculture, 40(1), 34–51. https://doi.org/10.20961/CARAKATANI.V40I1.92035

Fransiska, D., Hastiana, S., Sidartha, B. B. R., Pangesty, A. I., Chalid, M., Priadi, D., Ausias, G., & Irianto, H. E. (2025). Effect of sulfuric acid treatment in cellulose nanocrystals extraction from Sargassum sp. seaweed. Jurnal Pengolahan Hasil Perikanan Indonesia, 28(9), 772-788. http://dx.doi.org/10.17844/y5x3as39

Gabriel, T., Belete, A., Syrowatka, F., Neubert, R. H. H., & Gebre-Mariam, T. (2020). Extraction and characterization of celluloses from various plant byproducts. International Journal of Biological Macromolecules, 158, 1248–1258. https://doi.org/10.1016/J.IJBIOMAC.2020.04.264

Grzybek, P., Dudek, G., & van der Bruggen, B. (2024). Cellulose-based films and membranes: A comprehensive review on preparation and applications. Chemical Engineering Journal, 495, 153500. https://doi.org/10.1016/J.CEJ.2024.153500

[ISO] International Organization for Standardization. (2019). ISO 527-1:2019 Plastics — Determination of Tensile Properties. Geneva: International Organization for Standardization.

Jabeen, F., Zil-E-Aimen, N., Ahmad, R., Mir, S., Awwad, N. S., & Ibrahium, H. A. (2025). Carrageenan: structure, properties and applications with special emphasis on food science. RSC Advances, 15(27), 22035. https://doi.org/10.1039/D5RA03296B

Japanese Standard Association. (2019). JIS Z 1707 - General rules of plastic films for food packaging. In JIS Z 1707 (pp. 1–9). Japanese Industrial Standard. https://www.jisc.go.jp/eng/

Jayakody, M. M., Kaushani, K. G., Vanniarachchy, M. P. G., & Wijesekara, I. (2023). Hydrocolloid and water soluble polymers used in the food industry and their functional properties: a review. Polymer Bulletin, 80(4), 3585–3610. https://doi.org/10.1007/s00289-022-04264-5

[KLHK] Kementerian Lingkungan Hidup dan Kehutanan. (2022). Waste Composition Based On Waste Type. National Waste Management Information System; Ministry of Environment and Forestry of Indonesia. https://sipsn.menlhk.go.id/sipsn/public/data/komposisi

Mahcene, Z., Hasni, S., Goudjil, M. B., & Khelil, A. (2021). Food edible coating systems: A review. European Food Science and Engineering, 2(1), 26–33. https://dergipark.org.tr/tr/pub/efse

Mathew, S. S., Jaiswal, A. K., & Jaiswal, S. (2024). Carrageenan-based sustainable biomaterials for intelligent food packaging: A review. In Carbohydrate Polymers (Vol. 342, p. 122267). Elsevier. https://doi.org/10.1016/j.carbpol.2024.122267

Nurdiani, R., Firdaus, M., Astuti, R. T., Yasmin, P., Fauzi, A., Ningsih, O. T., Puspitasari, D. A., & Delima, M. P. (2024). Optimasi penambahan karagenan dan minyak asiri bawang putih pada edible coating dengan response surface methodology. Jurnal Pengolahan Hasil Perikanan Indonesia, 27(9), 765-781. http://dx.doi.org/10.17844/jphpi.v27i9.51539

Oh, S. Y., Dong, I. Y., Shin, Y., Hwan, C. K., Hak, Y. K., Yong, S. C., Won, H. P., & Ji, H. Y. (2005). Crystalline structure analysis of cellulose treated with sodium hydroxide and carbon dioxide by means of X-ray diffraction and FTIR spectroscopy. Carbohydrate Research, 340(15), 2376–2391. https://doi.org/10.1016/j.carres.2005.08.007

Olatunji, O. (2020). Carrageenans. In Aquatic Bioplymers (pp. 121–144). Springer, Cham. https://doi.org/10.1007/978-3-030-34709-3_6

Park, S. Y., Kim, H. L., & Her, J. Y. (2024). Isolation of microcrystalline cellulose (MCC) from pistachio shells and preparation of carrageenan-based composite films. Carbohydrate Polymer Technologies and Applications, 7, 100423. https://doi.org/10.1016/J.CARPTA.2024.100423

Petkoska, A. T., Daniloski, D., D’Cunha, N. M., Naumovski, N., & Broach, A. T. (2021). Edible packaging: Sustainable solutions and novel trends in food packaging. Food Research International, 140, 109981. https://doi.org/10.1016/J.FOODRES.2020.109981

Polícia, R., Serra, J. P., del Campo, F. J., Vilas-Vilela, J. L., Correia, D. M., Costa, C. M., & Lanceros-Méndez, S. (2024). Solid electrolytes based on i-carrageenan and different ionic liquids for sustainable electrochromic devices. Sustainable Materials and Technologies, 41, e01076. https://doi.org/10.1016/J.SUSMAT.2024.E01076

Ramadas, B. K., Rhim, J.-W., Roy, S., Ramadas, B. K., Rhim, J.-W., & Roy, S. (2024). Recent progress of carrageenan-based composite films in active and intelligent food packaging applications. Polymers, 16(7), 1–24. https://doi.org/10.3390/POLYM16071001

Renaka, J. I., Setyaningsih, W., & Palma, M. (2025). Fast and solvent-free determination of kappa and iota carrageenan in Kappaphycus alvarezii using ATR-FTIR spectroscopy and chemometrics. Food Chemistry, 495, 146371. https://doi.org/10.1016/J.FOODCHEM.2025.146371

Salem, K. S., Kasera, N. K., Rahman, M. A., Jameel, H., Habibi, Y., Eichhorn, S. J., French, A. D., Pal, L., & Lucia, L. A. (2023). Comparison and assessment of methods for cellulose crystallinity determination. Chemical Society Reviews, 52(18), 6417–6446. https://doi.org/10.1039/D2CS00569G

Sena, P. W., Ganda Putra, G. P., & Suhendra, L. (2021). Karakterisasi selulosa dari kulit buah kakao (Theobroma cacao L.) pada berbagai konsentrasi hidrogen peroksida dan suhu proses bleaching. Jurnal Rekayasa dan Manajemen Agroindustri, 9(3), 288. https://doi.org/10.24843/jrma.2021.v09.i03.p03

Shahidi, F., & Hossain, A. (2022). Preservation of aquatic food using edible films and coatings containing essential oils: a review. Critical Reviews in Food Science and Nutrition, 62(1), 66–105. https://doi.org/10.1080/10408398.2020.1812048

Suleman, R., Amjad, A., Ismail, A., Javed, S., Ghafoor, U., & Fahad, S. (2022). Impact of plastic bags usage in food commodities: an irreversible loss to environment. Environmental Science and Pollution Research, 29(33), 49483–49489. https://doi.org/10.1007/s11356-022-21091-3

Sulistiana, Z., Ridlo, A., & Sedjati, S. (2024). Karakteristik biodegradable film refined carrageenan dari Kappaphycus alvarezii dengan pemlastis gliserol. Journal of Marine Research, 13(3), 493–501. https://doi.org/10.14710/JMR.V13I3.39209

Suvarna, V., Nair, A., Mallya, R., Khan, T., & Omri, A. (2022). Antimicrobial nanomaterials for food packaging. Antibiotics, 11(6), 729. https://doi.org/10.3390/ANTIBIOTICS11060729

Wang, R., Zhang, S., Liu, S., Sun, Y., & Xu, H. (2023). A contribution to improve barrier properties and reduce swelling ratio of κ-carrageenan film from the incorporation of guar gum or locust bean gum. Polymers, 15(7), 1–10. https://doi.org/10.3390/polym15071751

Zhao, Y., Li, B., Li, C., Xu, Y., Luo, Y., Liang, D., & Huang, C. (2021). Comprehensive review of polysaccharide-based materials in edible packaging: a sustainable approach. Foods, 10(8), 1845. https://doi.org/10.3390/FOODS10081845

Authors

Haidawati
haidawati@fp.unila.ac.id (Primary Contact)
Esa Ghanim Fadhallah
Muhammad Ridho Al Farizi
Meilia Ardana
Az Zahra Firdaus Syachputri
Nessa Maharani
Haidawati, H., Fadhallah, E. G., Farizi, M. R. A., Ardana, M., & Maharani, N. (2026). Biodegradable films from cocoa husk-derived cellulose with kappa and iota-carrageenan formulations: Film biodegradabel berbasis selulosa kulit kakao dengan formulasi kappa dan iota-karaginan. Jurnal Pengolahan Hasil Perikanan Indonesia, 29(8), 725–739. https://doi.org/10.17844/500t7482

Article Details

How to Cite

Haidawati, H., Fadhallah, E. G., Farizi, M. R. A., Ardana, M., & Maharani, N. (2026). Biodegradable films from cocoa husk-derived cellulose with kappa and iota-carrageenan formulations: Film biodegradabel berbasis selulosa kulit kakao dengan formulasi kappa dan iota-karaginan. Jurnal Pengolahan Hasil Perikanan Indonesia, 29(8), 725–739. https://doi.org/10.17844/500t7482