Literature Cited
Moon, S. M., Jeon, S. H., Eom, T. and Shim, B. S., Recent research trends in eco-friendly materials for solving environmental microplastic problems, Prospectives of Industrial Chemistry 22(2):25-43 (2019).
Choi, J. Y., A study on biopolymer as a future fiber material, Journal of the Korean Society Design Culture 18(1):481-493 (2012).
Klemm, D., Heublein, B., Fink, H.-P. and Bohn, A., Cellulose: Fascinating biopolymer and sustainable raw material, Angewandte Chemie Int. Ed. 44:3358-3393 (2005).
10.1002/anie.200460587Sood, Y. V., Tyagi, R., Tyagi, S., Pande, P. C. and Tondon, R., Surface charge of different paper making raw materials and its influence on paper properties, J. Scientific & Industrial Research 69:300-304 (2010).
Sim, K. J., Youn, H. J., Ahn, J. G., Lee, J. G., Lee, H. Y. and Jo, Y. H., Surface modification of nanofibrillated cellulose by LbL (Layer-by-Layer) multilayering and its effect on the dewatering ability of suspension, Journal of Korea TAPPI 46(1):46-55 (2014).
10.7584/ktappi.2014.46.1.046Lee, J. Y., Park, T. U., Jo, H. M., Kim, K. M. and Kim, C. H., Study on surface modification of cellulose nanofibril with cationic polyelectrolyte, Journal of Korea TAPPI 50(4):116-122 (2018).
10.7584/JKTAPPI.2018.08.50.4.116Lee, J. Y., Kim, S. H., Kim, K. M., Jo. H. M. and Sung, Y. J., Study on the surface modification of pulp with cationic polyelectrolyte for the manufacture of cationic cellulose nanofibril, Journal of Korea TAPPI 51(6):152-157 (2019).
10.7584/JKTAPPI.2019.12.51.6.152Hasani, M., Cranston, E. D., Westman, G. and Gray, D., Cationic surface functionalization of cellulose nanocrystals, Soft Matter 4:2238-2244 (2008).
10.1039/B806789AKim, K. M., Lee, J. Y., Kim, C. H., Park, T. U. and Jo, H. M., Effect of the wet-end addition of cationic cellulose nanofibril on paper strength, Journal of Korea TAPPI 50(2):29-35 (2018).
10.7584/JKTAPPI.2018.04.50.2.29Li, P., Sirviӧ, J . A . , Asante , B . And Liimatainen, H., Recyclable deep eutectic solvent for the production of cationic nanocelluloses, Carbohydrate Polymers 199:219-227 (2018).
10.1016/j.carbpol.2018.07.024Liu, J., Yang, R., Wang, Y., Hua, F. and Tong, S., Cationic cellulose nanofibers with efficient anionic dye adsorption: Adsorption mechanism and application in salt-free dyeing of paper, Cellulose 29:2047-2061 (2022).
10.1007/s10570-021-04406-4Yan, L., Tao, H. and Bangal, P. R., Synthesis and flocculation behavior of cationic cellulose prepared in NaOH/urea aqueous solution, Clean 37(1):39-44 (2009)
10.1002/clen.200800127Li, G., Fu, Y., Shao, Z., Zhang, F. and Qin, M., Preparating cationic cellulose derivative in NaOH/urea aqeous solution and its performance as filler modifier, BioResources 10(4):7782-7794 (2015).
Fang, L., Zhang, X., Ma, J., Sun, D., Zhang, B. and Luan, J., Eco-friendly cationic modification of cotton fabric for improving utilization of reactive dyes, RSC Advances 5:45654 (2015).
10.1039/C5RA05887BOdabas, N., Amer, H., Bacher, M., Henniges, U., Potthast, A. and Rosenau, T., Properties of cellulosic material after cationization in different solvents, ACS Sustainable Chemistry & Engineering 4:2295-2301 (2016).
10.1021/acssuschemeng.5b01752Willberg-Keyriläinen, P., Pitkänen, P., Hulkko, J., Asikainen, M. and Setälä, H., The effect of mixing and consistency on cellulose cationization, Heliyon 5(3):e01349 (2019).
10.1016/j.heliyon.2019.e01349Sirviö, J. A. and Heiskanen, J. P., Room-temperautre dissolution and chemical modification of cellulose in aqueous tetraethylammonium hydroxide-carbamide solutions, Cellulose 27:1933-1950 (2020).
10.1007/s10570-019-02907-xCao, W., Li, H., Hong, Y., Yang, Z. and Fu, M., Preparation and characterization of spherical lignocellulose-based anion exchanger from sugarcane bagasse, BioResources 17(3):3984-4000 (2022).
10.15376/biores.17.3.3984-4000Kim, Y. L., An, H. J. and Cho. B-U., Production of cellulose beads with TEAH-urea solvent and dropping technique: Effect of inner diameter of syringe needle, Journal of Korea TAPPI 52(6):149-156 (2020).
10.7584/JKTAPPI.2020.12.52.6.149Kim, Y. L., An, H. J. and Cho, B-U., Production of cellulose beads with tetraethylammonium hydroxide-urea solvent and dropping technique: Effects of concentration of cellulose solution, Journal of Korea TAPPI 53(1):83-89 (2021).
10.7584/JKTAPPI.2021.02.53.1.83Xu, F. and Cho, B.-U., Preparation of porous regeneraged cellulose microstructures via emulsion-coatulation technique, Cellulose 29(3):1527-1542 (2022).
10.1007/s10570-022-04428-6Xu, F. and Cho, B.-U., Preparation and optimization of porous regenerated cellulose microspheres from cellulose tetraethylammonium/urea solution for adsroption of cationic methylene blue dye, BioResources 18(1)748-766 (2023).
10.15376/biores.18.1.748-766KS M ISO 5351, Pulps ― Determination of limiting viscosity number in cupri-ethylenediamine (CED) solution, Korean Standards Association (2020).
Trygg, J., Trivedi, P. and Fardim, P., Controlled depolymerisation of cellulose to a given degree of polymerisation, Cellulose Chemistry and Technology 50(5-6):557-567 (2016).
Şen, F. and Kahraman, M. V., Preparation and characterization of hybrid cationic hydroxyethyl cellulose/sodium alginate polyelectrolyte antimicrobial films, Polymers for Advanced Technologies 29(7):1895-1901 (2018).
10.1002/pat.4298Davanliu, A., Lee, J. D., Basu, S. and Kumar, R., Effect of viscosity and surfae tension on breakup and coalescence of bicomponent sprays, Chemical Engineering Science 131:243-255 (2015).
10.1016/j.ces.2015.03.057- Publisher :Korea Technical Association of The Pulp and Paper Industry
- Publisher(Ko) :한국펄프종이공학회
- Journal Title :Journal of Korea TAPPI
- Journal Title(Ko) :펄프종이기술
- Volume : 54
- No :6
- Pages :85-93
- Received Date : 2022-12-01
- Revised Date : 2022-12-19
- Accepted Date : 2022-12-21
- DOI :https://doi.org/10.7584/JKTAPPI.2022.12.54.6.85


Journal of Korea TAPPI






