References
Duchesne, I., Hult, E. L., Molin, U., Daniel, G., Iversen, T., and Lennhon, H., The influence of hemicellulose on fibril-aggregation of kraft pulp fibres as revealed by FE-SEM and CP/MAS 13C-NMR. Cellulose 8:103-111 (2001).
Nada, A., Kamel, S., and El-Sakhawy, M., Thermal behavior and infrared spectroscopy of cellulose carbamates. Polym. Degrad. Stab. 70:347-355 (2000).
10.1016/s0141-3910(00)00119-1Quiévy, N., Jacquet, N., Sclavons, M., Deroanne, C., Paquot, M., and Devaux, J., Influence of homogenization and drying on the thermal stability of microfibrillated cellulose, Polym. Degrad. Stab. 95:306-314 (2010).
Adel, M. A., Abb El-Wahab, Z. H., Ibrahim, A. A., and Al-Shemy, M. T., Characterization of microcrystalline cellulose prepared from lignocellulosic materials. Part II: physicochemical properties. Carbohydr. Polym. 83:676-687 (2011).
Popescu, M. C., Popescu, C. M., Lisa, G., and Sakata, Y., Evaluation of morphological and chemical aspects of different wood species by spectroscopy and thermal methods, J. Mol. Struct. 988:65-72 (2011).
10.1016/j.molstruc.2010.12.004Nelson, M. L. and O'Connor, R. T., Relation of certain infrared bands to cellulose crystallinity and crystal lattice type. Part II. A new infrared ratio for estimation of crystallinity in cellulose I and II, J. Appl. Polym. Sci. 8:1325-1341 (1964).
10.1002/app.1964.070080323O'Connor, R. T., DuPré, E. F., and Mitcham, D., Applications of infrared absorption spectroscopy to investigations of cotton and modified cottons. Part I. Physical and crystalline modifications and oxidation, Textile Res. J. 28:382-392 (1958).
Hurtubise, F. G. and Kräsig, H., Classification of fine structural characteristics in cellulose by infrared spectroscopy. Use of potassium bromide pellet technique, Anal. Chem. 32:177-181 (1960).
10.1021/ac60158a010Oh, S. Y., Yoo, D. I., Shin, Y., Kim, H. C., Kim, H. Y., Chung, Y. S., Park, W. H., and Youk, J. H., Crystalline structure analysis of cellulose treated with sodium hydroxide and carbon dioxide by means of X-ray diffraction and FTIR spectroscopy, Carbohydrate Research 340:2376-2391 (2005).
10.1016/j.carres.2005.08.007Široký, J., Blackburn, R. S., Bechtold, T., and White, P., Attenuated total reflectance Fourier-transform infrared spectroscopy analysis of crystallinity changes in lyocell following continuous treatment with sodium hydroxide, Cellulose 17:103-115 (2010).
Carrilo, F., Colom, X., Suñol, J. J., and Saurina, J., Structural FTIR analysis and thermal characterization of lyocell and viscose-type fibres, Eur. Polym. J. 40:2229-2234 (2004).
Corgié, S. C., Smith, H. M., and Walker, L. P., Enzymatic transformations of cellulose assessed by quantitative high-throughput Fourier transform infrared spectroscopy (QHTFTIR). Biotechnol. Bioeng. 108:1509-1520 (2011).
Spiridon, I., Teacã, C. A., and Bodîrlãu, R., Structural changes evidenced by FTIR spectroscopy in cellulosic materials after pretreatment with ionic liquid and enzymatic hydrolysis, Bioresources 6(1):400-413 (2010).
Wan, J., Yang, J., Ma, Y., and Wang, Y., Effects of pulp preparation and papermaking processes on the properties of OCC fibers, Bioresources 6(2):1615-1630 (2011).
Wistata, N., Zhang, X., and Young, R. A., Properties and treatments of pulps from recycled paper. Part II. Surface properties and crystallinity of fibers and fines, Cellulose 6: 325-348 (1999).
Somwang, K., Enomae, T., Isogai, A., and Onabe, F., Changes in crystallinity and reswelling capability of pulp fibers by recycling treatment, Japan Tappi J. 56(6):103-106 (2002).
10.2524/jtappij.56.863- Publisher :Korea Technical Association of The Pulp and Paper Industry
- Publisher(Ko) :한국펄프종이공학회
- Journal Title :Journal of Korea TAPPI
- Journal Title(Ko) :펄프종이기술
- Volume : 49
- No :2
- Pages :41-48
- Received Date : 2017-03-30
- Revised Date : 2017-04-14
- Accepted Date : 2017-04-17
- DOI :https://doi.org/10.7584/JKTAPPI.2017.04.49.2.41


Journal of Korea TAPPI






