A Study on Sustainable Eggshell-Derived Hydroxyapatite/CMC Membranes: Enhancing Flexibility and Thermal Stability for Sustainable Development Goals (SDGs)
Abstract
Keywords
Full Text:
PDFReferences
Liuyun, J., Yubao, L., and Chengdong, X. (2009). A novel composite membrane of chitosan-carboxymethyl cellulose polyelectrolyte complex membrane filled with nano-hydroxyapatite I. Preparation and properties. Journal of Materials Science: Materials in Medicine, 20, 1645-1652.
Pokhrel, S. (2018). Hydroxyapatite: preparation, properties and its biomedical applications. Advances in Chemical Engineering and Science, 8(04), 225.
Uskoković, V. (2015). The role of hydroxyl channel in defining selected physicochemical peculiarities exhibited by hydroxyapatite. RSC advances, 5(46), 36614-36633.
Eslami, Z., Elkoun, S., Robert, M., and Adjallé, K. (2023). A review of the effect of plasticizers on the physical and mechanical properties of alginate-based films. Molecules, 28(18), 6637.
Pasqui, D., Torricelli, P., De Cagna, M., Fini, M., and Barbucci, R. (2014). Carboxymethyl cellulose—hydroxyapatite hybrid hydrogel as a composite material for bone tissue engineering applications. Journal of Biomedical Materials Research Part A, 102(5), 1568-1579.
Nedelcu, I. A., Ficai, A., Ficai, D., Voicu, G., Albu, M. G., and Andronescu, E. (2015). Hybrid collagencarboxymethylcellulose/hydroxyapatite composite materials for bone tissue regeneration. Sci. Bull. B Chem. Mater. Sci. UPB, 77, 3-14.
Sayed, M., El-Maghraby, H. F., Bondioli, F., and Naga, S. M. (2018). 3D carboxymethyl cellulose/hydroxyapatite (CMC/HA) scaffold composites based on recycled eggshell. Journal of Applied Pharmaceutical Science, 8(3), 023-030.
He, X., Tang, K., Li, X., Wang, F., Liu, J., Zou, F., Yang, M., and Li, M. (2019). A porous collagen-carboxymethyl cellulose/hydroxyapatite composite for bone tissue engineering by bi-molecular template method. International Journal of Biological Macromolecules, 137, 45-53.
Oprea, M., and Voicu, S. I. (2020). Recent advances in applications of cellulose derivatives-based composite membranes with hydroxyapatite. Materials, 13(11), 2481.
Bulina, N. V., Makarova, S. V., Baev, S. G., Matvienko, A. A., Gerasimov, K. B., Logutenko, O. A., and Bystrov, V. S. (2021). A study of thermal stability of hydroxyapatite. Minerals, 11(12), 1310.
Lett, J. A., Sagadevan, S., Fatimah, I., Hoque, M. E., Lokanathan, Y., Léonard, E., Alshahateet, S. F., Schirhagl, R., and Oh, W. C. (2021). Recent advances in natural polymer-based hydroxyapatite scaffolds: Properties and applications. European Polymer Journal, 148, 110360.
Habibie, S., Wargadipura, A. H. S., Gustiono, D., Herdianto, N., Riswoko, A., Nikmatin, S., and Clarke, S. (2017). Production and characterization of hydroxyapatite bone substitute material performed from Indonesian limestone. International Journal of Biomedical Engineering and Science, 4(1), 11-23.
Pu'ad, N. M., Haq, R. A., Noh, H. M., Abdullah, H. Z., Idris, M. I., and Lee, T. C. (2020). Synthesis method of hydroxyapatite: A review. Materials Today: Proceedings, 29, 233-239.
Nandiyanto, A. B. D., Nur, N., and Taufik, R. S. R. (2022). Investigation of adsorption performance of calcium carbonate microparticles prepared from eggshells waste. Journal of Engineering Science and Technology, 17(3), 1934-1943.
Nandiyanto, A. B. D., Girsang, G. C. S., and Rizkia, R. S. (2022). Isotherm adsorption characteristics of 63-um calcium carbonate particles prepared from eggshells waste. Journal of Engineering Science and Technology, 17(5), 3203-3210.
Anggraeni, S., Nandiyanto, A. B. D., Hofifah, S. N., Sopian, O., and Saputra, Z. (2022). Effect of biomass comparison of rice straw and eggshell in a porous concrete mixture. Journal of Engineering, Science and Technology, 17(3), 1857-1866.
Nandiyanto, A. B. D., Putri, M. E., Fiandini, M., Ragadhita, R., Kurniawan, T., Farobie, O., and Bilad, M. R. (2024). Characteristics of ammonia adsorption on various sizes of calcium carbonate microparticles from chicken eggshell waste. Moroccan Journal of Chemistry, 12(3), 1073-1096.
Nandiyanto, A. B. D., Ragadhita, R., Fiandini, M., Al Husaeni, D. F., Al Husaeni, D. N., and Fadhillah, F. (2022). Domestic waste (eggshells and banana peels particles) as sustainable and renewable resources for improving resin-based brakepad performance: Bibliometric literature review, techno-economic analysis, dual-sized reinforcing experiments, to comparison with commercial products. Communications in Science and Technology, 7(1), 50-61.
Anggraeni, S., Nandiyanto, A. B. D., Nurjamil, A. M., Wolio, N. A., Laila, R. N., Rohmah, S. I. A., and Azizah, N. N. (2022). Effect of sawdust, eggshells, rice, husks, and corn husks as fine aggregates on the mechanical properties of concrete. Journal of Engineering Science and Technology, 17(3), 1810-1819.
Ragadhita, R., Al Husaeni, D. F., and Nandiyanto, A. B. D. (2023). Techno‐economic evaluation of the production of resin-based brake pads using agricultural wastes: Comparison of eggshells/banana peels brake pads and commercial asbestos brake pads. ASEAN Journal of Science and Engineering, 3(3), 243-250.
Irwansyah, F. S., Amal, A. I., Hadisantoso, E. P., Noviyanti, A. R., Eddy, D. R., and Risdiana, R. (2025). New insight on the role of banana plant (Musa acuminata Cavendish) template in low-temperature synthesis of hydroxyapatite. Results in Chemistry, 13, 101932.
Irwansyah, F. S., Nurizal, A. F. R., Hadisantoso, E. P., and Zain, S. B. M. (2024). Characterization and application of hydroxyapatite from chicken egg shell with green template as a potential drug delivery system. Jurnal Kimia Valensi, 10(2), 260-268.
Irwansyah, F. S., Amal, A. I., Hadisantoso, E. P., Noviyanti, A. R., Eddy, D. R., Ma'Amor, A. B., and Risdiana, R. (2023). Effect of low solid/liquid ratio on hydrothermal synthesis of hydroxyapatite with green template from banana flower (Musa acuminata Cavendish). Al Kimiya: Jurnal Ilmu Kimia dan Terapan, 10(1), 57-63.
Jung, Y. S., Ye, J. R., Kwack, K. H., Lee, M. H., Kweon, D. K., Chae, Y. K., Lee, H., Choi, S. C., and Nam, O. H. (2024). Bilayer cellulose-coated hyaluronic acid-based scaffold for accelerating oral wound healing. Cellulose, 31(16), 9811-9824.
Sarkar, C., Kumari, P., Anuvrat, K., Sahu, S. K., Chakraborty, J., and Garai, S. (2018). Synthesis and characterization of mechanically strong carboxymethyl cellulose–gelatin–hydroxyapatite nanocomposite for load-bearing orthopedic application. Journal of Materials Science, 53(1), 230-246.
Manjubala, I., Basu, P., and Narendrakumar, U. (2018). In situ synthesis of hydroxyapatite/carboxymethyl cellulose composites for bone regeneration applications. Colloid and Polymer Science, 296, 1729-1737.
Liuyun, J., Yubao, L., and Chengdong, X. (2009). Preparation and biological properties of a novel composite scaffold of nano-hydroxyapatite/chitosan/carboxymethyl cellulose for bone tissue engineering. Journal of Biomedical Science, 16, 1-10.
Krylova, E., Ivanov, A., Orlovski, V., El-Registan, G., and Barinov, S. (2002). Hydroxypatite-polysaccharide granules for drug delivery. Journal of Materials Science: Materials in Medicine, 13, 87-90.
Irwansyah, F. S., Amal, A. I., Hadisantoso, E. P., Noviyanti, A. R., Eddy, D. R., Risdiana, R., Suryana, S., and Zain, S. B. M. (2023). How to make and characterize hydroxyapatite from eggshell using the hydrothermal method: Potential insights for drug delivery system. Indonesian Journal of Science and Technology, 8(3), 469-486.
Galiano, F., Briceño, K., Marino, T., Molino, A., Christensen, K. V., and Figoli, A. (2018). Advances in biopolymer-based membrane preparation and applications. Journal of Membrane Science, 564, 562-586.
Kerans, G., Sanjaya, Y., Liliasari, L., Pamungkas, J., and Ate, G., Y. (2024). Effect of substrate and water on cultivation of Sumba seaworm (nyale) and experimental practicum design for improving critical and creative thinking skills of prospective science teacher in biology and supporting sustainable development goals (SDGs). ASEAN Journal of Science and Engineering, 4(3), 383-404.
Rahmat, A., Zahrani, A., Hidayat, H., Arum, F., Respati, S.A., Susanti, W.D., Hariadi, H., Mutolib, A. (2025). Characteristics of jengkol peel (pithecellobium jiringa) biochar produced at various pyrolysis temperatures for enhanced agricultural waste management and supporting sustainable development goals (SDGs). ASEAN Journal of Science and Engineering, 5(1), 145-172.
Makinde, S.O., Ajani, Y.A., and Abdulrahman, M.R. (2024). Smart learning as transformative impact of technology: A paradigm for accomplishing sustainable development goals (SDGs) in education. Indonesian Journal of Educational Research and Technology, 4(3), 213-224.
Gemil, K.W., Na’ila, D.S., Ardila, N.Z., and Sarahah, Z.U. (2024). The relationship of vocational education skills in agribusiness processing agricultural products in achieving sustainable development goals (SDGs). ASEAN Journal of Science and Engineering Education, 4(2), 181-192.
Haq, M.R.I., Nurhaliza, D.V., Rahmat, L.N., and Ruchiat, R.N.A. (2024). The influence of environmentally friendly packaging on consumer interest in implementing zero waste in the food industry to meet sustainable development goals (SDGs) needs. ASEAN Journal of Economic and Economic Education, 3(2), 111-116.
Paristiowati, M., Zulmanelis, Z., and Nurhadi, M. F. (2019). Green chemistry-based experiments as the implementation of sustainable development values. JTK (Jurnal Tadris Kimiya), 4(1), 11-20.
Aswirna, P., Kiswanda, V., Nurhasnah, N., and Fahmi, R. (2022). Implementation of STEM E-Module with SDGs Principle to Improve Science Literacy and Environment-friendly Attitudes in Terms of Gender. JTK (Jurnal Tadris Kimiya), 7(1), 64-77.
Noviyanti, A. R., Akbar, N., Deawati, Y., Ernawati, E. E., Malik, Y. T., and Fauzia, R. P. (2020). A novel hydrothermal synthesis of nanohydroxyapatite from eggshell-calcium-oxide precursors. Heliyon, 6(4).
Saadiah, M. A., Zhang, D., Nagao, Y., Muzakir, S. K., and Samsudin, A. S. (2019). Reducing crystallinity on thin film based CMC/PVA hybrid polymer for application as a host in polymer electrolytes. Journal of Non-Crystalline Solids, 511, 201-211.
Noviyanti, A. R., Waardhani, A. W., Permana, M. D., Pratomo, U., Juliandri, Takei, T., and Umar, A. A. (2024). Synthesis of hydroxyapatite nanowires (HAp NWs) from eggshell by solvothermal method using oleic acid as soft-template. Emergent Materials, 7(4), 1647-1655.
Crowley, K. D., Cameron, M., and Hughes, J. M. (2002). Golden Book of Phase Transitions. Wroclaw, 1, 1-123
Permana, M. D., Noviyanti, A. R., Lestari, P. R., Kumada, N., Eddy, D. R., and Rahayu, I. (2022). Enhancing the photocatalytic activity of TiO2/Na2Ti6O13 composites by gold for the photodegradation of phenol. ChemEngineering, 6(5), 69.
Fatimah, S., Ragadhita, R., Al Husaeni, D. F., and Nandiyanto, A. B. D. (2022). How to calculate crystallite size from x-ray diffraction (XRD) using Scherrer method. ASEAN Journal of Science and Engineering, 2(1), 65-76.
Yolanda, Y. D., and Nandiyanto, A. B. D. (2022). How to read and calculate diameter size from electron microscopy images. ASEAN Journal of Science and Engineering Education, 2(1), 11-36.
Ragadhita, R., and Nandiyanto, A. B. D. (2022). Why 200° C is effective for creating carbon from organic waste (from thermal gravity (TG-DTA) perspective)?. ASEAN Journal for Science and Engineering in Materials, 2(2), 75-80.
Hajiannezhad, M., and Rahimi, B. (2023). Evaluation of thermal decomposition of calcite in the fault zone, a case study of the Astana fault. Geopersia, 13(2), 247-260.
Waheed, M., Yousaf, M., Shehzad, A., Inam-Ur-Raheem, M., Khan, M. K. I., Khan, M. R., Ahmad, N., Abdullah, A., and Aadil, R. M. (2020). Channelling eggshell waste to valuable and utilizable products: a comprehensive review. Trends in Food Science and Technology, 106, 78-90.
Kuśnieruk, S., Wojnarowicz, J., Chodara, A., Chudoba, T., Gierlotka, S., and Lojkowski, W. (2016). Influence of hydrothermal synthesis parameters on the properties of hydroxyapatite nanoparticles. Beilstein Journal of Nanotechnology, 7(1), 1586-1601.
Mustapha, S., Ndamitso, M. M., Abdulkareem, A. S., Tijani, J. O., Shuaib, D. T., Mohammed, A. K., and Sumaila, A. (2019). Comparative study of crystallite size using Williamson-Hall and Debye-Scherrer plots for ZnO nanoparticles. Advances in Natural Sciences: Nanoscience and Nanotechnology, 10(4), 045013.
Lapailaka, T., and Triandi, R. (2013). Penentuan ukuran Kristal (crystallite size) lapisan tipis PZT dengan metode XRD melalui pendekatan persamaan Debye Scherrer. Erudio Journal of Educational Innovation, 1(2).
Khan, H., Yerramilli, A. S., D'Oliveira, A., Alford, T. L., Boffito, D. C., and Patience, G. S. (2020). Experimental methods in chemical engineering: X‐ray diffraction spectroscopy—XRD. The Canadian Journal of Chemical Engineering, 98(6), 1255-1266.
DileepKumar, V. G., Sridhar, M. S., Aramwit, P., Krut’ko, V. K., Musskaya, O. N., Glazov, I. E., and Reddy, N. (2022). A review on the synthesis and properties of hydroxyapatite for biomedical applications. Journal of Biomaterials Science, Polymer Edition, 33(2), 229-261.
Jemli, Y. E., Abdelouahdi, K., Minh, D. P., Barakat, A., and Solhy, A. (2022). Synthesis and characterization of hydroxyapatite and hydroxyapatite‐based catalysts. Design and Applications of Hydroxyapatite‐Based Catalysts, 2022, 19-72.
Sothornvit, R., and Krochta, J. M. (2001). Plasticizer effect on mechanical properties of β-lactoglobulin films. Journal of Food Engineering, 50(3), 149-155.
Li, Y., Wang, J., Tang, J., Liu, Y., and He, Y. (2009). Conductive performances of solid polymer electrolyte films based on PVB/LiClO4 plasticized by PEG200, PEG400 and PEG600. Journal of Power Sources, 187(2), 305-311.
Donhowe, I. G., and Fennema, O. (1993). The effects of plasticizers on crystallinity, permeability, and mechanical properties of methylcellulose films. Journal of Food Processing and Preservation, 17(4), 247-257.
Raharjo, J., Yuliani, H., Hapsari, A. U., and Pravitasari, R. D. (2019). Effect polyethylene glycol (PEG 400) to the physical properties of gadolinium doped cerium (Ce0. 9Gd0. 1O1. 95) nanoparticles synthesized by co-precipitation method. In IOP Conference Series: Materials Science and Engineering, 622(1), 012003.
Mohamood, T., Fattima’Al-Zahara, N., Abdul Halim, A. H., and Zainuddin, N. (2021). Carboxymethyl cellulose hydrogel from biomass waste of oil palm empty fruit bunch using calcium chloride as crosslinking agent. Polymers, 13(23), 4056.
Yang, W., Ping, P., Wang, L. L., Bo-Yuan Chen, T., Chun-Yin Yuen, A., Zhu, S. E., Wang, N>, Hu, Y., Yang, P., Sun, C., Zhang, C., Lu, H., Chan, Q. N., and Yeoh, G. H. (2018). Fabrication of fully bio-based aerogels via microcrystalline cellulose and hydroxyapatite nanorods with highly effective flame-retardant properties. ACS Applied Nano Materials, 1(4), 1921-1931.
Demir, E. C., Benkaddour, A., Aldrich, D. R., McDermott, M. T., Kim, C. I., and Ayranci, C. (2022). A predictive model towards understanding the effect of reinforcement agglomeration on the stiffness of nanocomposites. Journal of Composite Materials, 56(10), 1591-1604.
Mazuki, N. F., Majeed, A. A., Nagao, Y., and Samsudin, A. S. (2020). Studies on ionics conduction properties of modification CMC-PVA based polymer blend electrolytes via impedance approach. Polymer Testing, 81, 106234.
Nadagouda, M. N., and Varma, R. S. (2007). Synthesis of thermally stable carboxymethyl cellulose/metal biodegradable nanocomposites for potential biological applications. Biomacromolecules, 8(9), 2762-2767.
Dey, P., Bhattacharjee, S., Yadav, D. K., Hmar, B. Z., Gayen, K., and Bhowmick, T. K. (2023). Valorization of waste biomass for synthesis of carboxy-methyl-cellulose as a sustainable edible coating on fruits: A review. International Journal of Biological Macromolecules, 253, 127412.
DOI: https://doi.org/10.17509/ijost.v10i2.81741
Refbacks
- There are currently no refbacks.
Copyright (c) 2025 Universitas Pendidikan Indonesia

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.
Indonesian Journal of Science and Technology is published by UPI.
View My Stats