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2018 Vol.50, Issue 4 Preview Page
30 August 2018. pp. 82-91
Abstract
References

Literature Cited

1
M. Ahmed and M. Samah, Carbohydrate Polymers, Bionanocomposites materials for food packaging applications: Concepts and future outlook, 193; 19-27 (2018)

Ahmed, M. and Samah, M., Bionanocomposites materials for food packaging applications: Concepts and future outlook, Carbohydrate Polymers 193:19-27 (2018).

2
D. Briassoulis and A. Giannoulis, Polymer Testing, Evaluation of the functionality of bio-based food packaging films, 69; 39-51 (2018)

Briassoulis, D. and Giannoulis, A., Evaluation of the functionality of bio-based food packaging films, Polymer Testing 69:39-51 (2018).

10.1016/j.polymertesting.2018.05.003
3
H. M. C. Azeredo, K. W. E. Miranda, H. L. Ribeiro, M. F. Rosa and D. M. Nascimento, Journal of Food Engineering, Nanoreinforced alginate-acerola puree coatings on acerola fruits, 113(4); 505-510 (2012)

Azeredo, H. M. C., Miranda, K. W. E., Ribeiro, H. L., Rosa, M. F., and Nascimento, D. M., Nanoreinforced alginate-acerola puree coatings on acerola fruits, Journal of Food Engineering 113(4):505-510 (2012).

10.1016/j.jfoodeng.2012.08.006
4
D. S. Lee, K. L. Uam and L. Piergiovanni, Ch. 9. Food Packaging Science and Technology; 243-274, CRC Press. (2008)

Lee, D. S., Uam, K. L., and Piergiovanni, L., Food Packaging Science and Technology, Ch. 9, CRC Press, pp. 243-274 (2008).

10.1201/9781439894071
5
S. S. Nair, S. Q. Wang and D. C. Hurley, Composites Part A: Applied Science and Manufacturing, Nanoscale characterization of natural fibers and their composites using contact-resonance force microscopy, 41(5); 624-631 (2010)

Nair, S. S., Wang, S. Q., and Hurley, D. C., Nanoscale characterization of natural fibers and their composites using contact-resonance force microscopy, Composites Part A: Applied Science and Manufacturing 41(5):624-631 (2010).

10.1016/j.compositesa.2010.01.009
6
L. Pal, M. K. Joyce, P. D. Fleming, S. Crette and C. Ruffner, Journal of Coatings Technology Research, High barrier sustainable co-polymerized coatings, 5(4); 479-489 (2008)

Pal, L., Joyce, M. K., Fleming, P. D., Crette, S., and Ruffner, C., High barrier sustainable co-polymerized coatings, Journal of Coatings Technology Research 5(4):479-489 (2008).

10.1007/s11998-008-9101-0
7
I. Siró and D. Plackett, Cellulose, Microfibrillated cellulose and new nanocomposite materials: A review, 17(3); 459-494 (2010)

Siró, I., and Plackett, D., Microfibrillated cellulose and new nanocomposite materials: A review, Cellulose 17(3):459-494 (2010).

8
H. J. Park, S. Y. Yook, S. Y. Park and H. J. Youn, Journal of Korea TAPPI, Hydrophobization of cellulose nanofibrils by silylation under an aqueous system, 50(3); 72-77 (2018)

Park, H. J., Yook., S. Y., Park., S. Y., and Youn, H. J., Hydrophobization of cellulose nanofibrils by silylation under an aqueous system, Journal of Korea TAPPI 50(3):72-77 (2018).

9
A. Tejado, M. N. Alam, M. Antal, H. Yang and T. G. M. van de Ven, Cellulose, Energy requirements for the disintegration of cellulose fibers into cellulose nanofibers, 19(3); 831-842 (2012)

Tejado, A., Alam, M. N., Antal, M., Yang, H., and van de Ven, T. G. M., Energy requirements for the disintegration of cellulose fibers into cellulose nanofibers, Cellulose 19(3):831-842 (2012).

10.1007/s10570-012-9694-4
10
M. Henriksson, G. Henriksson, L. A. Berglund and T. Lindström, European Polymer Journal, An environmentally friendly method for enzyme-assisted preparation of microfibrillated cellulose nanofibers, 43(8); 3434-3441 (2007)

Henriksson, M., Henriksson, G., Berglund, L. A. and Lindström, T., An environmentally friendly method for enzyme-assisted preparation of microfibrillated cellulose nanofibers, European Polymer Journal 43(8):3434-3441 (2007).

11
J. Y. Lee, T. U. Park, H. M. Jo, C. H. Kim, K. M. Kim and J. P. Jeun, Journal of Korea TAPPI, Evaluation of grinding efficiency for the preparation of cellulose nanofibril treated by electron beam irradiation, 49(6); 118-124 (2017)

Lee, J. Y., Park, T. U., Jo, H. M., Kim, C. H., Kim, K. M., and Jeun, J. P., Evaluation of grinding efficiency for the preparation of cellulose nanofibril treated by electron beam irradiation, Journal of Korea TAPPI 49(6):118-124 (2017).

10.7584/jktappi.2017.12.49.6.118
12
J. Y. Lee, C. H. Kim, T. U. Park, H. M. Jo and K. M. Kim, Journal of Korea TAPPI, Evaluation of the drainage and the strength of specialty paper made with cellulose nanofibrils originated from cotton fibers, 50(2); 68-76 (2018)

Lee, J. Y., Kim, C. H., Park, T. U., Jo, H. M., and Kim, K. M., Evaluation of the drainage and the strength of specialty paper made with cellulose nanofibrils originated from cotton fibers, Journal of Korea TAPPI 50(2):68-76 (2018).

10.7584/jktappi.2018.04.50.2.68
13
J. Y. Lee, H. M. Jo, T. U. Park, C. H. Kim, K. M. Kim and J. P. Jeon, Jorunal of Korea TAPPI, Effect of electron beam irradiation on the manufacturing efficiency and the physical properties of carboxymethylated cellulose nanofibril, 49(6); 125-131 (2017)

Lee, J. Y., Jo, H. M., Park, T. U., Kim, C. H., Kim, K. M., and Jeon, J. P., Effect of electron beam irradiation on the manufacturing efficiency and the physical properties of carboxymethylated cellulose nanofibril, Jorunal of Korea TAPPI 49(6):125-131 (2017).

10.7584/jktappi.2017.12.49.6.125
14
H. M. C. Azeredo, M. F. Rosa and L. H. C. Mattoso, Industrial Crops and Products, Nanocellulose in bio-based food packaging applications, 97; 664-671 (2017)

Azeredo, H. M. C., Rosa, M. F., and Mattoso, L. H. C., Nanocellulose in bio-based food packaging applications, Industrial Crops and Products 97:664-671 (2017).

10.1016/j.indcrop.2016.03.013
15
V. Ottesen, V. Kumar, M. Toivakka, G. Chinga-Carrasco, K. Syverud and O. W. Gregersen, Nordic Pulp and Paper Research Journal, Viability and properties of roll-to-roll coating of cellulose nanofibrils on recycled paperboard, 32(2); 179-188 (2017)

Ottesen, V., Kumar, V., Toivakka, M., Chinga-Carrasco, G., Syverud, K., and Gregersen, O. W., Viability and properties of roll-to-roll coating of cellulose nanofibrils on recycled paperboard, Nordic Pulp and Paper Research Journal 32(2):179-188 (2017).

10.3183/npprj-2017-32-02-p179-188
16
M. M. M. Seyyed, A. Elyas, T. Mehdi, W. B. Douglas and D. F. Mohammadreza, Progress in Organic Coatings, Application of cellulose nanofibril (CNF) as coating on paperboard at moderate solids content and high coating speed using blade coater, 122; 207-218 (2018)

Seyyed, M. M. M., Elyas, A., Mehdi, T., Douglas, W. B., and Mohammadreza, D. F., Application of cellulose nanofibril (CNF) as coating on paperboard at moderate solids content and high coating speed using blade coater, Progress in Organic Coatings 122:207-218 (2018).

17
A. Elyas, M. Saeed and S. Ahmadreza, Progress in Orgarnc Coatings, Cellulose nanofibrils as coating material and its effects on paper properties, 101; 455-460 (2016)

Elyas, A., Saeed, M., and Ahmadreza, S., Cellulose nanofibrils as coating material and its effects on paper properties, Progress in Orgarnc Coatings 101:455-460 (2016).

18
S. S. Nair, J. Y. Zhu, Y. Deng and A. J. Ragauskas, Sustainable Chemical Processes, High performance green barriers based on nanocellulose, 2(1); 23 (2014)

Nair, S. S., Zhu, J. Y., Deng, Y., and Ragauskas, A. J., High performance green barriers based on nanocellulose, Sustainable Chemical Processes 2(1):23 (2014).

10.1186/s40508-014-0023-0
19
A. Ferreo, L. Pal and M. Hubbe, Industrial Crops and Products, Nanocellulose in packaging: Advances in barrier layer technologies, 95; 574-582 (2017)

Ferreo, A., Pal, L., and Hubbe, M., Nanocellulose in packaging: Advances in barrier layer technologies, Industrial Crops and Products 95:574-582 (2017).

Information
  • 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 :82-91
  • Received Date : 2018-07-23
  • Revised Date : 2018-08-16
  • Accepted Date : 2018-08-17