Literature Cited
Lee, J. Y., Kim, C. H., Kim, E. H., Park, T. U., Jeun, J. P., and Kim, S. Y., Evaluation of electron beam irradiation as new pretreatment for cellulose nanofibril production, Journal of Korea TAPPI 48(4):99-106 (2016).
10.7584/jktappi.2016.08.48.4.99Lavoine, N., Desloges, I., Dufresne, A., and Bras, J., Microfibrillated cellulose - Its barrier properties and application in cellulosic materials: A review, Carbohydrate Polymers 90(2): 735-764 (2012).
10.1016/j.carbpol.2012.05.026Šturcová, A., Davies, G. R., and Eichhorn, S. J., Elastic modulus and stress-transfer properties of tunicate cellulose whiskers, Biomacromolecules 6(2):1055-1061 (2005).
Bhatnagar, A. and Sain, M., Processing of cellulose nanofiberreinforced composites, Journal of Reinforced Plastics and Composites 24(12): 1259-1268 (2005).
10.1177/0731684405049864Li, M. C., Wu, Q., Song, K., Lee, S., Qing, Y., and Wu, Y., Cellulose nanoparticles: Structure-morphology-rheology relationships, ACS Sustainable Chemistry & Engineering 3(5):821-832 (2015).
10.1021/acssuschemeng.5b00144Jorfi, M. and Foster, E. J., Recent advances in nanocellulose for biomedical applications, Journal of Applied Polymer 132(14):41719 (2015).
10.1002/app.41719Berglund, L., Cellulose-based nanocomposites, In Natural Fibers, Biopolymers and Biocomposites, Mohanty, A. K., Misra, M., and Drzal, L. (ed.), CRC Press, Boca Raton, Florida, pp. 807- 832 (2005).
Peng, Y., Gardner, D. J., and Han, Y., Drying cellulose nanofibrils: In search of a suitable method, Cellulose 19(1):91-102 (2012).
10.1007/s10570-011-9630-zMoon, R. J., Martini, A., Nairn, J., Simonsen, J., and Youngblood, J., Cellulose nanomaterials review: Structure, properties and nanocomposites, Chemical Society Reviews 40(7): 3941-3994 (2011).
10.1039/c0cs00108bKolakovic, R., Laaksonen, T., Peltonen, L., Laukkanen, A., and Hirvonen, J., Spray dried nanofibrillar cellulose microparticles for sustained drug release, International Journal of Pharmaceutics 430(1):47-55 (2012).
10.1016/j.ijpharm.2012.03.031Butchosa, N. and Zhou, Q., Water redispersible cellulose nanofibrils adsorbed with carboxymethyl cellulose, Cellulose 21(6):4349-4358 (2014).
10.1007/s10570-014-0452-7Eyholzer, C., Borges de Couraça, A., Duc, F., Bourban, P. E., Tingaut, P., Zimmermann, T., and Oksman, K., Biocomposite hydrogels with carboxymethylated, nanofibrillated cellulose powder for replacement of the nucleus pulposus, Biomacromolecules 12(5):1419-1427 (2011).
10.1021/bm101131bShatkin, J. A., Wegner, T. H., Bilek, E. T., and Cowie, J., Market projections of cellulose nanomaterial-enabled products (Part 1): Applications, Tappi Journal 13(5):9-16 (2014).
Cowie, J., Bilek, E. T., Wegner, T. H., and Shatkin, J. A., Market projections of cellulose nanomaterial-enabled products (Part 2): Volume estimates, Tappi Journal 13(6):57-69 (2014).
Wijman, J. G., de Leeuw, P. P., Moezelaar, R., Zwietering, M. H., and Abee, T., Air-liquid interface biofilms of Bacillus cereus: Formation, sporulation, and dispersion, Applied and Environmental Microbiology 73(5):1481-1488 (2007).
10.1128/aem.01781-06Huttunen, K., Hyvärinen, A., Nevalainen, A., Komulainen, H., and Hirvonen, M. R., Production of proinflammatory mediators by indoor air bacteria and fungal spores in mouse and human cell lines, Environmental Health Perspectives 111(1):85-92 (2003).
10.1289/ehp.5478Berghem, L. E. and Pettersson, L. G., The mechanism of enzymatic cellulose degradation: Purification of a cellulolytic enzyme from Trichoderma viride active on highly ordered cellulose, European Journal of Biochemistry 37(1): 21-30 (1973).
10.1111/j.1432-1033.1973.tb02952.xLi, W., Zhang, W. W., Yang, M. M., and Chen, Y. L., Cloning of the thermostable cellulase gene from newly isolated Bacillus subtilis and its expression in Escherichia coli, Molecular Biotechnology 40(2):195-201 (2008).
10.1007/s12033-008-9079-yPourramezan, Z., Ghezelbash, G. R., Romani, B., Ziaei, S., and Hedayatkhah, A., Screening and identification of newly isolated cellulose-degrading bacteria from the gut of xylophagous termite Microcerotermes diversus (Silvestri), Microbiology 81(6):736-742 (2012).
10.1134/s0026261712060124Gilbert, P., Beveridge, E. G., and Crone, P. B., Effect of phenoxyethanol on the permeability of Escherichia coli NCTC 5933 to inorganic ions, Microbios 19(75):17-26 (1977).
Gilbert, P., Beveridge, G., and Crone, P. B., The action of phenoxyethanol upon respiration and dehydrogenase enzyme systems in Escherichia coli [proceedings], The Journal of Pharmacy and Pharmacology 28:51 (1976).
Choi, E.-Y., Effect of phenoxyethanol and alkane diol mixture on the anti-microbial activity and antiseptic ability in cosmetics, Kor. J. Aesthet Cosmetol. 13(2):213-220 (2015).
Hwang, S. J., Park, S., Hwang, J. K., and Pan, J. G., Food-grade antimicrobials potentiate the antibacterial activity of 1, 2-hexanediol, Letters in Applied Microbiology 60(5):431-439 (2015).
10.1111/lam.12398Jones, J. A., Starkey, J. R., and Kleinhofs, A., Toxicity and mutagenicity of sodium azide in mammalian cell cultures, Mutation Research/Genetic Toxicology 77(3):293-299 (1980).
10.1016/0165-1218(80)90064-6Nam, Y. W., Kim, J. E., Cho, J., Chung, S. P., Lee, H. S., and Kim, E. C., A lethal case of sodium azide ingestion, Journal of the Korean Society of Clinical Toxicology 6(1):49-51 (2008).
Ibrahim, M. F., Abd-Aziz, S., Yusoff, M. E. M., Phang, L. Y., and Hassan, M. A., Simultaneous enzymatic saccharification and ABE fermentation using pretreated oil palm empty fruit bunch as substrate to produce butanol and hydrogen as biofuel, Renewable Energy 77: 447-455 (2015).
10.1016/j.renene.2014.12.047- Publisher :Korea Technical Association of The Pulp and Paper Industry
- Publisher(Ko) :한국펄프종이공학회
- Journal Title :Journal of Korea TAPPI
- Journal Title(Ko) :펄프종이기술
- Volume : 50
- No :4
- Pages :102-109
- Received Date : 2018-07-27
- Revised Date : 2018-08-14
- Accepted Date : 2018-08-17
- DOI :https://doi.org/10.7584/JKTAPPI.2018.08.50.4.102


Journal of Korea TAPPI






