Cite

Alinejad, M., Nikafshar, S., Gondaliya, A., Bagheri, S., Chen, N., Singh, S. K. et al., 2019: Lignin-Based Polyurethanes: Opportunities for and Adhesives. Polymers (Basel), 11:1202. Search in Google Scholar

Amari, M., Khimeche, K., Hima A., Chebout R., Mezroua A., 2021: Synthesis of Green Adhesive with Tannin Extracted from Eucalyptus Bark for Potential Use in Wood Composites. Journal of Renewable Materials, 9:463–475. Search in Google Scholar

Aristri, M. A., Lubis, M. A. R., Iswanto, A. H., Fatriasari, W., Sari, R. K., Antov, P. et al., 2021a: Bio-Based Polyurethane Resins Derived from Tannin: Source, Synthesis, Characterisation, and Application. Forests, 12:1516. Search in Google Scholar

Aristri, M. A., Lubis, M. A. R., Laksana, R. P. B., Sari, R. K., Iswanto, A. H., Kristak, L. et al., 2022: Thermal and mechanical performance of ramie fibers modified with polyurethane resins derived from Acacia mangium bark tannin. Journal of Materials Research and Technology, 18:2413–2427. Search in Google Scholar

Aristri, M. A., Lubis, M. A. R., Laksana, R. P. B., Falah, F., Fatriasari, W., Ismayati, M. et al., 2021b: Bio-Polyurethane Resins Derived from Liquid Fractions of Lignin for the Modification of Ramie Fibers. Jurnal Sylva Lestari, 9:223–238. Search in Google Scholar

Aristri, M. A., Lubis, M. A. R., Yadav, S. M., Antov, P., Papadopoulos, A. N., Pizzi, A. et al., 2021c: Recent Developments in Lignin- and Tannin-Based Non-Isocyanate Polyurethane Resins for Wood Adhesives – A Review. Applied Sciences, 11:4242. Search in Google Scholar

Bachtiar, E. V., Kurkowiak, K., Yan, L., Kasal, B., Kolb, T., 2019: Thermal stability, fire performance, and mechanical properties of natural fibre fabric-reinforced polymer composites with different fire retardants. Polymers (Basel), 11:669. Search in Google Scholar

Cuong, D. X., Hoan, N. X., Dong, D. H., Thuy, L. T. M., Thanh, N. V., Ha, H. T. et al. 2019: Tannin: Extraction from Plants. Intech 21. Search in Google Scholar

Gama, N. V., Ferreira, A., Barros-Timmons, A., 2018: Polyurethane foams: Past, present, and future. Materials (Basel), 11:1841. Search in Google Scholar

Gholami, M., Shakeri, A., Zolghadr, M., Yamini, G., 2021: Non-Isocyanate polyurethane from the extracted tannin of sumac leaves: Synthesis, characterization, and optimization of the reaction parameters. Industrial Crops and Products, 161:113195. Search in Google Scholar

Gogoi, R., Alam, M., Khandal, R., 2014: Effect of increasing NCO/OH molar ratio on the physicomechanical and thermal properties of isocyanate terminated polyurethane prepolymer. International Journal of Basic and Applied Sciences 3:118. Search in Google Scholar

Hafiz, N. L. M., Tahir, P. M., Hua, L. S., Abidin, Z. Z., Sabaruddin, F. A., Yunus, N. M. et al., 2020: Curing and thermal properties of co-polymerized tannin phenol–formaldehyde resin for bonding wood veneers. Journal of Materials Research and Technology, 9:6994-7001. Search in Google Scholar

Handika, S. O., Lubis, M. A. R., Sari, R. K., Laksana, R. P. B., Antov, P., Savov, V., et al. 2021: Enhancing Thermal and Mechanical Properties of Ramie Fiber via Impregnation by Lignin-Based Polyurethane Resin. Materials (Basel) 14:6850. Search in Google Scholar

He, L., Xia, F., Wang, Y., Yuan, J., Chen, D., Zheng, J., 2021: Mechanical and dynamic mechanical properties of the amino silicone oil emulsion modified ramie fiber reinforced composites. Polymers (Basel) 13:4083. Search in Google Scholar

Ionescu, M., Radojčić, D., Wan, X., Shrestha, M. L., Petrovič, Z. S., Upshaw, T. A., 2016: Highly functional polyols from castor oil for rigid polyurethanes. European Polymer Journal, 84:736–749. Search in Google Scholar

Jesuarockiam, N., Jawaid, M., Zainudin, E. S., Thariq, H. S. M., Yahaya, R., 2019: Enhanced thermal and dynamic mechanical properties of synthetic/natural hybrid composites with graphene nanoplateletes. Polymers (Basel) 11:1085. Search in Google Scholar

Kandimalla, R., Kalita, S., Choudhury, B., Devi, D., Kalita, D., Kalita, K. et al., 2016: Fiber from ramie plant (Boehmeria nivea): A novel suture biomaterial. Materials Science and Engineering: C, 62:816–822. Search in Google Scholar

Labbé, N., De Jéso, B., Lartigue, J. C., Daudé, G., Pétraud, M., Ratier, M., 2002: Moisture content and extractive materials in maritime pine wood by low field 1H NMR. Holzforschung, 56:25–31. Search in Google Scholar

Lee, C. H., Khalina, A., Lee, S. H., Liu, M., 2020: A Comprehensive Review on Bast Fibre Retting Process for Optimal Performance in Fibre-Reinforced Polymer Composites. Advances in Materials Science and Engineering, 2020:1–27. Search in Google Scholar

Liang, S., Neisius, N. M., Gaan, S., 2013: Recent developments in flame retardant polymeric coatings. Progress in Organic Coatings, 76:1642–1665. Search in Google Scholar

Mahir, F. I., Keya, K. N., Sarker, B., Nahiun, K. M., Khan, R. A., 2019: A brief review on natural fiber used as a replacement of synthetic fiber in polymer composites. Materials Engineering Research, 1:88–99. Search in Google Scholar

Margem, F. M., Monteiro, S. N., Bravo Neto, J., Rodriguez, R. J. S., 2010: The dynamic-mechanical behavior of epoxy matrix composites reinforced with ramie fibers. Matéria (Rio de Janeiro), 15:164–171. Search in Google Scholar

Paiva, J. C., De Carvalho, L. H., Fonseca, V. M., Monteiro, S. N., d’Almeida, J. R. M., 2004: Analysis of the tensile strength of polyester/hybrid ramie–cotton fabric composites. Polymer Testing, 23:131–135. Search in Google Scholar

Putra, B. R., Aristri, M. A., Rohaeti, E., Wahyuni, W. T., 2021: Development of Differential Pulse Anodic Stripping Voltammetry Technique for Cadmium(II) Detection and Its Application in Water Spinach. Indonesian Journal of Chemical Research, 9:111–117. Search in Google Scholar

Selladurai, A., Kathiresapillai, V., 2017: Modification of Tannin extracted from the bark of Acacia auriculiformis for the antibacterial activity and application of metal adsorption. Ruhuna Journal of Science, 8:90–102. Search in Google Scholar

Selvakumar, K., Meenakshisundaram, O., 2019: Mechanical and dynamic mechanical analysis of jute and human hair-reinforced polymer composites. Polymer Composites, 40:1132–1141. Search in Google Scholar

Sosuke, O., Susanti, C. M. E., Yano, H., 2003: Mechanical Condensation of Tannin in Acacia mangium Bark. Wood Research-Kyoto, 1:23–24 Search in Google Scholar

Sughanthy, S. A. P., Ansari, M. N. M., Atiqah, A., 2020: Dynamic mechanical analysis of polyethylene terephthalate/hydroxyapatite biocomposites for tissue engineering applications. Journal of Materials Research and Technology, 9:2350–2356. Search in Google Scholar

Sukmawi, R., Sulaeman, R., Sribudiani, E., 2020: Pemanfaatan Limbah Kulit Kayu Acacia mangium sebagai Bahan Baku Papan Partikel Menggunakan Perekat Damar. Journal Ilmu-Ilmu Kehutanan, 4:1–6. (In Indonesian). Search in Google Scholar

Thébault, M., Pizzi, A., Santiago-Medina, F. J., Al-Mary-ouki, F. M., Abdalla, S., 2017: Isocyanate-Free Polyurethanes by Coreaction of Condensed Tannins with Aminated Tannins. Journal of Renewable Materials, 5:21–29. Search in Google Scholar

Twite-Kabamba, E., Mechraoui, A., Rodrigue, D., 2009: Rheological properties of polypropylene/hemp fiber composites. Polymer Composites, 30:1401–1407. Search in Google Scholar

Valenzuela, J., Von Leyser, E. V., Pizzi, A., Westermeyer, C., Gorrini, B., 2012: Industrial production of pine tannin-bonded particleboard and MDF. European Journal of Wood and Wood Products, 70:735–740. Search in Google Scholar

Von Fraunhofer, J. A., 2012: Adhesion and Cohesion. International Journal of Dentistry, 2012:1–8. Search in Google Scholar

Wina, E., Susana, I. W. R., Tangendjaja, B., 2010: Biological activity of tannins from Acacia mangium bark extracted by different solvents. Media Peternakan, 33:103–107. Search in Google Scholar

eISSN:
2454-0358
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Life Sciences, Plant Science, Ecology, other