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DAFTAR PUSTAKA

Agbeboh, N. I., Oladele, I. O., Daramola, O. O., Adediran, A. A., Olasukanmi, O.

O., & Tanimola, M. O. (2020). Environmentally Sustainable Processes for The Synthesis of Hydroxyapatite. Heliyon, 6(4), 1-13.

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Ahmed, T. A., Wu, L., Younes, M., & Hincke, M. (2021). Biotechnological Applications of Eggshell: Recent Advances. Frontiers in Bioengineering and Biotechnology, 9(1), 1-19.

Awasthi, S., Pandey, S. K., Arunan, E., & Srivastava, C. (2021). A Review on Hydroxyapatite Coatings for The Biomedical Applications:

Experimental and Theoretical Perspectives. Journal of Materials Chemistry B, 9(2), 1-55.

Badenes, S. M., Fernandes-Platzgummer, A., Rodrigues, C. A. V., Diogo, M. M., Da Silva, C. L., & Cabral, J. M. S. (2016). Stem Cell Manufacturing, USA: Elshevier.

Baskaran, M., Rokiah, H., Othman, S., Salim, H., Masatoshi, S., & Tomoko, S.

(2015). Optimization of Press Temperature and Time For Binderless particleboard Manufactured From Oil Palm Trunk Biomass at Different Thickness Levels. Materials Today Communications, 3(1), 87-88.

Bezerra, M.A., Santelli, R.E., Oliveira, E.P., Villar, L.S. & Escaleira, L.A. (2008).

Response Surface Methodology (RSM) as a tool for Optimatization in Analytical Chemistry. Talanta, 76(5), 965-977.

Bose, S., & Saha, S. K. (2003). Synthesis and Characterization of Hydroxyapatite Nanopowders by Emulsion Technique. Chemistry of materials, 15(23), 4464-4469.

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Buchan, S. A., Chung, H., Brown, K. A., Austin, P. C., Fell, D. B., Gubbay, J., &

Kwong, J. (2022). Effectiveness of COVID-19 Vaccines Against Omicron or Delta infection. MedRxiv : The Prepint Server for Health Sciences, 1-25.

Chen, B. H., Chen, K. I., Ho, M. L., Chen, H. N., Chen, W. C., & Wang, C. K.

(2009). Synthesis of Calcium Phosphates and Porous Hydroxyapatite Beads Prepared by Emulsion Method. Materials Chemistry and Physics, 113(1), 365-371.

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Dergaa, I., Abdelrahman, H., Varma, A., Yousfi, N., Souissi, A., Ghram, A., Hammad, A. S., Musa, E. R., Taheri, M., Irandoust, K., Chtourou, H., Rafiei, M., Ghasemi, M., & Farzian, S. (2021). COVID-19 Vaccination, Herd Immunity and The Transition Toward Normalcy: Challenges With The Upcoming Sports Events. Annals of Applied Sport Science, 9(3), 1- 10.

Earl, J. S., Wood, D. J., & Milne, S. J. (2006). Hydrothermal Synthesis of Hydroxyapatite. Journal of Physics: Conference Series, 26(1), 268-271.

Ebrahimi, S., Stephen Sipaut Mohd Nasri, C., & Bin Arshad, S. E. (2021).

Hydrothermal Synthesis of Hydroxyapatite Powders Using Response Surface Methodology (RSM). Journal Plos one, 16(5), 1-24.

Fadila, R., Fadli, A., & Yenti, S. R. (2019). Sintesis Hidroksiapatit Menggunakan Metode Wet Mechanochemical dengan Variasi Waktu Reaksi dan Rasio Bola Penggiling. Jurnal Online Mahasiswa Fakultas Teknik, 6(1), 1-6.

Fadli, A., Rahmi, D, Y., Huda, F., & Pertiwi, M, D. (2016). Teknologi Microcarrier di Dalam Aplikasi Biomedik: Review. Seminar Nasional Teknik Kimia– Teknologi Oleo Petro Kimia Indonesia, Pekanbaru: 1-2 Oktober 2016, 29-41.

Fihri, A., Len, C., Varma, R. S., & Solhy, A. (2017). Hydroxyapatite: A Review of Syntheses, Structure and Applications in Heterogeneous Catalysis. Coordination Chemistry Reviews, 347(1), 48-76.

Fujii, S., Okada, M., Nishimura, T., Sugimoto, T., Maeda, H., Hamasaki, H., &

Nakamura, Y. (2013). Hydroxyapatite-Coated Poly (ϵ-Caprolactone) Microspheres Fabricated Via a Pickering Emulsion Route: Effect of Fabrication Parameters on Diameter and Chemical Composition.

Composite Interfaces, 20(1), 45-56.

GE Healthcare. (2013). Microcarrier Cell Culture Principles and Methods.

Sweden: GE Healthcare Bio-Sciences.

Gouveia, D. S., Bressiani, A. H. A., & Bressiani, J. C. (2006). Phosphoric Acid Rate Addition Effect In The Hydroxyapatite Synthesis by Neutralization Method. Materials Science Forum, 530(1), 593-598.

Güldiken, M. (2014). Simvastatin Loaded Porous Hydroxyapatite Based Microcarriers for Bone Tissue Engineering. Thesis. Turkey: Middle East Technical University.

Guo, X., Yan, H., Zhao, S., Li, Z., Li, Y., & Liang, X. (2013). Effect of Calcining Temperature on Particle Size of Hydroxyapatite Synthesized By Solid- State Reaction at Room Temperature. Advanced Powder Technology, 24(6),1-5.

Gupta, P. (2020). A Review: Epidemiology, Pathogenesis and Prospect in Developing Vaccines for Novel Coronavirus (COVID-19). Indian Journal of Tuberculosis, 68(1), 1-23.

Gyorgy, S, N., Karoly, Z., Fazekas, P., Nemeth, P., Bodis, E., Menyha, A., Kotai, L., & Klebert, S. (2019). Effect of The Reaction Temperature on The

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Morphology of Nanosized HAp. Thermal Analysis and Calorimetry, 138(1), 145–151.

Haris, A., Fadli, A., & Yenti, S, R. (2016). Sintesis Hidroksiapatit dari limbah Tulang Sapi Menggunakan Metode Presipitasi Dengan Variasi Rasio Ca/P dan Konsentrasi H3PO4. Jurnal Online Mahasiswa Fakultas Teknik, 3(2), 1-10.

Haruda, M. S., & Yenti, S. R. (2016). Pengaruh Ph Dan Waktu Reaksi Pada Sintesis Hidroksiapatit Dari Tulang Sapi Dengan Metode Presipitasi.

Jurnal Online Mahasiswa Fakultas Teknik, 3(1), 1-7.

Hayati, R., & Astuti. (2015). Sintesis Nanopartikel Silika Dari Pasir Pantai Purus Padang Sumatera Barat Dengan Metode Kopresipitasi. Jurnal Fisika Unand, 4(3), 282-287.

Ishii, T., Saito, H., Komizu, Y., Tomoshige, R., & Matsushita, T. (2016). Effects of Macroporous Hydroxyapatite Carriers on The Growth and Function of Human Hepatoblasts Derived from Fetal Hepatocytes. Journal of bioscience and bioengineering, 122(2), 1-6.

Islam, M.A., Alam, M.R., & Hannan, M.O. (2012). Multiresponse Optimization Based on Stastical Response Surface Methodology and Desirability Function for The Production of Particleboard. Composites Part B : Engineering, 43(2), 861-868.

Jeong, J., Kim, J. H., Shim, J. H., Hwang, N. S., & Heo, C. Y. (2019). Bioactive Calcium Phosphate Materials and Applications in Bone Regeneration. Biomaterials research, 23(1), 1-11.

Kehoe, S., Ardhaoui, M., & Stokes, J. (2011). Design of Experiments Study of Hydroxyapatite Synthesis for Orthopaedic Application Using Fractional Factorial Design. Material Engineering and Performance, 20(8), 1423- 1437.

Kim, T,W.,Ahn, W, B., Kim, J, M., Kim, J, H.,Kim, T, H.,Perez, R, A., & Jang, H, S. (2020). Combined Delivery of Two Different Bioactive Factors Incorporated in Hydroxyapatite Microcarrier for Bone Regeneration.

Tissue Engineering and Regenerative Medicine, 17(5), 1-18.

Kosachan, N., Jaroenworaluck, A., Jiemsirilers, S., Jinawath, S., & Stevens, R.

(2015). Hydroxyapatite Nanoparticles Formed Under A Wet Mechanochemical Method. Journal of Biomedical Materials Research Part B: Applied Biomaterials, 105(3), 1-10.

Lee, I. H., Lee, J. A., Lee, J. H., Heo, Y. W., & Kim, J. J. (2020). Effects of pH and Reaction Temperature on Hydroxyapatite Powders Synthesized By Precipitation. Journal of the Korean Ceramic Society, 57(1), 1-9.

Li, B., Wang, X., Wang, Y., Gou, W., Yuan, X., Peng, J., & Lu, S. (2015). Past, Present, and Future of Microcarrier-Based Tissue Engineering. Journal of Orthopaedic Translation, 3(2), 51-57.

Neira, I. S., Guitián, F., Taniguchi, T., Watanabe, T., & Yoshimura, M. (2008).

Hydrothermal Synthesis of Hydroxyapatite Whiskers With Sharp 45

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Faceted Hexagonal Morphology. Journal of Materials Science, 43(7), 2171-2178.

Nurlaela, A., Dewi, S, U., Dahlan, K., & Soejoko, D, S. (2014). Pemanfaatan Limbah Cangkang Telur Ayam dan Bebek sebagai Sumber Kalsium Untuk Sintesismineral Tulang. Pendidikan Fisika Indonesia, 10(1), 81- 85.

Owuamanam, S., & Cree, D. (2020). Progress of Bio-Calcium Carbonate Waste Eggshell and Seashell Fillers in Polymer Composites: A Review.

Journal of Composites Science, 4(70), 1-22.

Perez, R., El-Fiqi, A., Park, J. H., Kim, T. H., Kim, J. H., & Kim, H. W. (2014).

Therapeutic Bioactive Microcarrier: Co-Delivery of Growth Factors and Stem Cells for Bone Tissue Engineering. Journal of Tissue Engineering and Regenerative Medicine. 10(1), 520-530.

Bakhtiari, L., Javadpour, J., Rezaie, H. R., Erfan, M., & Shokrgozar, M.A. (2015).

The effect of swelling agent on the pore characteristics of mesoporous hydroxyapatite nanoparticles. Progress in Natural Science: Materials International, 25(3). 185-190.

Hasibuan, J. & Valerrin, G. T. H. (2022). Sintesis Hidroksiapatit Berpori menggunakan Lateks sebagai Agen Pembentuk Pori dengan Metode Presipitasi. Skripsi. Pekanbaru: Universitas Riau.

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