Acknowledgement
본 연구는 국토교통과학기술진흥원의 국토교통기술촉진연구사업(21CTAP-C164039-01)의 지원에 의해 수행되었습니다.
References
- Almeida, E., Diamantino, T.C., Sousa, O. (2007). Marine paints: the particular case of antifouling paints, Progress in Organic Coating, 59(1), 2-20. https://doi.org/10.1016/j.porgcoat.2007.01.017
- Bae, J.W., Park, G.S., Ru, M.L., Park, G.H. (2019). Antifouling effect of an ultrasonic system operating at different frequencies, Journal of the Korean Society of Marine Environment & Safety, 25(5), 609-616 [in Korean]. https://doi.org/10.7837/kosomes.2019.25.5.609
- Chen, H., Yang, J., Hu, Z., Zheng, B., Sun, J., Wo, Q., ... Zhu, R. (2019). Effects of AKD sizing on the morphology and pore distribution properties of OCC fibers, Journal of Nanomaterials, 2019.
- Cherian, B.M., Leao, A.L., de Souza, S.F., Costa, L.M.M., de Olyveira, G.M., Kottaisamy, M., ... Thomas, S. (2011). Cellulose nanocomposites with nanofibres isolated from pineapple leaf fibers for medical applications, Carbohydrate Polymers, 86(4), 1790-1798. https://doi.org/10.1016/j.carbpol.2011.07.009
- Chhabra, R.P. (2010). Non-newtonian fluids: an introduction, In Rheology of Complex Fluids, 1(10), 3-34. https://doi.org/10.1007/978-1-4419-6494-6_1
- Cho, S.H., Ryu, S.N., Hwang, W.B., Yoon, B.S. (2013). Anti-fouling propery of hydrophobic surfaces in sea water, Journal of the Korean Society for Marine Environment and Energy, 16(2), 82-87 [in Korean]. https://doi.org/10.7846/JKOSMEE.2013.16.2.82
- Cho, S.W., Hwang, S.Y., Park, J.Y., Oh, D.S. (2021). Nanocellulose and nanochitin-based all-organic biopolymer composites, Polymer Science and Technology, 32(1), 15-20 [in Korean].
- De Azeredo, H.M. (2009). Nanocomposites for food packaging applications, Food Research International, 42(9), 1240-1253. https://doi.org/10.1016/j.foodres.2009.03.019
- Goo, S.I., Park, H.J., Yook, S.Y., Park, S.Y., Youn, H.J. (2018). Preparation of hydrophobized cellulose nanofibril film with high strength using AKD, Journal of Korea TAPPI, 50(6), 34-41 [in Korean].
- Habibi, Y., Lucia, L.A., Rojas, O.J. (2010). Cellulose nanocrystals: chemistry, self-assembly, and applications, Chemical Reviews, 110(6), 3479-3500. https://doi.org/10.1021/cr900339w
- Han, S.Y., Park, C.W., Kim, B.Y., Lee, S.H. (2015). Effect of the addition of various cellulose nanofibers on the properties of sheet of paper mulberry bast fiber, Journal of the Korean Wood Science and Technology, 43(6), 730-739 [in Korean]. https://doi.org/10.5658/WOOD.2015.43.6.730
- Hong, S.K., Lee, K.Y. (2013). Superhydrophobic nano patterning techniques for enhanced performance of naval underwater vessels, Journal of Ocean Engineering and Technology, 27(2), 114-120 [in Korean]. https://doi.org/10.5574/KSOE.2013.27.2.114
- Isogai, A. (2013). Wood nanocelluloses: fundamentals and applications as new bio-based nanomaterials, Journal of Wood Science, 59(6), 449-459. https://doi.org/10.1007/s10086-013-1365-z
- Iwamoto, S., Yamamoto, S., Lee, S.H., Ito, H., Endo, T. (2014). Mechanical and thermal properties of polypropylene composites reinforced with lignocellulose nanofibers dried in melted ethylene-butene copolymer, Materials, 7(10), 6919-6929. https://doi.org/10.3390/ma7106919
- Jung, D.H., Kim, A.R., Moon, D.S., Lee, S.W., Kim, H.J., Ham, Y.H. (2009). Preliminary experimental study on biofouling in real sea environment, Journal of Ocean Engineering and Technology, 23(6), 39-43 [in Korean].
- Kalia, S., Boufi, S., Celli, A., Kango, S. (2014). Nanofibrillated cellulose: surface modification and potential applications, Colloid and Polymer Science, 292(1), 5-31. https://doi.org/10.1007/s00396-013-3112-9
- Khalil, H.A., Bhat, A.H., Yusra, A.I. (2012). Green composites from sustainable cellulose nanofibrils: a review, Carbohydrate polymers, 87(2), 963-979. https://doi.org/10.1016/j.carbpol.2011.08.078
- Kim, J.S., Jung, S.H., Kim, J.H., Lee, K.M., Bae, S.H. (2006). Probability-based durability analysis of concrete structures under chloride attack environments, Journal of the Korea Concrete Institute, 18(2), 239-248 [in Korean]. https://doi.org/10.4334/JKCI.2006.18.2.239
- Kim, S.H., Lee, J.Y., Jo, H.M., Lee, Y.H. (2020). Study on the multilayer barrier coating using cellulose nanofibrils and internal sizing agent, Journal of Korea TAPPI, 52(6), 47-55 [in Korean].
- Kumar, S., Chauhan, V.S., Chakrabarti, S.K. (2016). Separation and analysis techniques for bound and unbound alkyl ketene dimer(AKD) in paper: a review, Arabian Journal of Chemistry, 9, S1636-S1642. https://doi.org/10.1016/j.arabjc.2012.04.019
- Lavoine, N., Desloges, I., Dufresne, A., Bras, J. (2012). Microfibrillated cellulose-Its barrier properties and applications in cellulosic materials: a review, Carbohydrate Polymers, 90(2), 735-764. https://doi.org/10.1016/j.carbpol.2012.05.026
- Lee, B.H., Kim, H.Y., Hyeon, C.Y., Byeon, J.W. (2017). Failure analysis of commercial water-repellent coatings for high temperature plant, Journal of Applied Reliability, 17(1), 78-82 [in Korean].
- Lee, C.S., Kim, M.W. (2014). Prediction of service life for marine concrete structures by exposure experiments, Journal of the Korean Society of Hazard Mitigation, 14(3), 341-349. https://doi.org/10.9798/KOSHAM.2014.14.3.341
- Lee, D.K, Shin, K.J. (2017). Durability design chart for concrete exposed to chloride environment according to KCI concrete standard specification, Journal of the Korea Concrete Institute, 29(6), 649-656. https://doi.org/10.4334/JKCI.2017.29.6.649
- Lee, H.V., Hamid, S.B.A., Zain, S.K. (2014). Conversion of lignocellulosic biomass to nanocellulose: structure and chemical process, The Scientific World Journal, 2014.
- Lee, J.Y., Jo, H.M., Lee, Y.H., Lee, J.Y. (2021) Effect of polyelectrolyte-cationized cellulose nanofibril on the properties of paper, Journal of Korea TAPPI, 53(3), 49-56 [in Korean].
- Lee, S.H., Chang, F., Inoue, S., Endo, T. (2010). Increase in enzyme accessibility by generation of nanospace in cell wall supramolecular structure, Bioresource Technology, 101(19), 7218-7223. https://doi.org/10.1016/j.biortech.2010.04.069
- Leung, K.M., Wheeler, J.R., Morritt, D., Crane, M. (2001). Endocrine disruption in fishes and invertebrates: issues for saltwater ecological risk assessment, Coastal and Estuarine Risk Assessment. Lewis Publishers, Boca Raton, 189-216.
- Nechyporchuk, O., Belgacem, M.N., Bras, J. (2016). Production of cellulose nanofibrils: a review of recent advances, Industrial Crops and Products, 93, 2-25. https://doi.org/10.1016/j.indcrop.2016.02.016
- Nogi, M., Yano, H. (2008). Transparent nanocomposites based on cellulose produced by bacteria offer potential innovation in the electronics device industry, Advanced Materials, 20(10), 1849-1852. https://doi.org/10.1002/adma.200702559
- Okahisa, Y., Abe, K., Nogi, M., Nakagaito, A.N., Nakatani, T., Yano, H. (2011). Effects of delignification in the production of plant-based cellulose nanofibers for optically transparent nanocomposites, Composites Science and Technology, 71(10), 1342-1347. https://doi.org/10.1016/j.compscitech.2011.05.006
- Park, S., Kwon, S., Lee, Y., Koh, W.G., Ha, J.W., Lee, S.Y. (2012). Study on anti-biofouling properties of the surfaces treated with perfluoropolyether(PFPE), Applied Chemistry for Engineering, 23(1), 71-76 [in Korean].
- Park, Y. (2020). The dyeing properties of mugwort(artemisia princeps) extract using nano-cellulose, Textile Coloration and Finishing, 32(3), 142-149 [in Korean]. https://doi.org/10.5764/TCF.2020.32.3.142
- Rol, F., Belgacem, M.N., Gandini, A., Bras, J. (2019). Recent advances in surface-modified cellulose nanofibrils, Progress in Polymer Science, 88, 241-264. https://doi.org/10.1016/j.progpolymsci.2018.09.002
- Siro, I., Plackett, D. (2010). Microfibrillated cellulose and new nanocomposite materials: a review. Cellulose, 17(3), 459-494. https://doi.org/10.1007/s10570-010-9405-y
- Townsin, R.L. (2003). The ship hull fouling penalty, Biofouling, 19(S1), 9-15. https://doi.org/10.1080/0892701031000088535
- Tsujino, M., Noguchi, T., Tamura, M., Kanematsu, M., Maruyama, I. (2007). Application of conventionally recycled coarse aggregate to concrete structure by surface modification treatment, Journal of Advanced Concrete Technology, 5(1), 13-25. https://doi.org/10.3151/jact.5.13
- Zinge, C., Kandasubramanian, B. (2020). Nanocellulose based biodegradable polymers, European Polymer Journal, 133, 109758. https://doi.org/10.1016/j.eurpolymj.2020.109758