Biomedical Engineering Reference
In-Depth Information
31. Dammstrom, S.; Salmen, L.; Gatenholm, P., The effect of moisture on the dynamical
mechanical properties of bacterial cellulose/glucuronoxylan nanocomposites. Poly-
mer 2005 , 46(23), 10364-71.
32. Linder, A.; Bergman, R.; Bodin, A.; Gatenholm, P., Mechanism of assembly of
xylan onto cellulose surfaces. Langmuir 2003 , 19(12), 5072-7.
33. Shirai, A.; Sakairi, N.; Nishi, N.; Tokura, S., Preparation of a novel (1- > 4)-beta-
D-glycan by Acetobacter xylinum - A proposed mechanism for incorporation of a
N-acetylglucosamine residue into bacterial cellulose. Carbohydrate Polymers 1997 ,
32(3-4), 223-7.
34. Hamlyn, P.F.; Crighton, J.; Dobb, M.G.; Tasker, A. Cellulose product. GB Patent
2314856, 14.01.1998, 1998 .
35. Ciechanska, D., Multifunctional bacterial cellulose/chitosan composite materials for
medical applications. Fibres & Textiles in Eastern Europe 2004 , 12(4), 69-72.
36. Dubey, V.; Pandey, L.K.; Saxena, C., Pervaporative separation of ethanol/water
azeotrope using a novel chitosan-impregnated bacterial cellulose membrane and
chitosan-poly(vinyl alcohol) blends. Journal of Membrane Science 2005 , 251(1-2),
131-6.
37. Ciechanska, D.; Struszczyk, H.; Guzinska, K., Modification of bacterial cellulose.
Fibres & Textiles in Eastern Europe 1998 , 6(4), 61-5.
38. Gong, J.P.;
Katsuyama, Y.;
Kurokawa, T.;
Osada, Y., Double-network hydro-
gels with extremely high mechanical strength.
Advanced Materials 2003 , 15(14),
1155-8.
39. Nakayama, A.; Kakugo, A.; Gong, J.P.; Osada, Y.; Takai, M.; Erata, T.; Kawano,
S., High mechanical strength double-network hydrogel with bacterial cellulose.
Advanced Functional Materials 2004 , 14(11), 1124-8.
40. Jung, R.; Jin, H.-J., Preparations of silk fibroin/bacterial cellulose composite films
and their mechanical properties. Key Engineering Materials 2007 , 342-343, 741-4.
41. Wan, W.K.; Millon, L. Poly(vinyl alcohol)-bacterial cellulose nanocomposite. US
Patent 20050037082, 2005 .
42. Cousins, S.K.; Brown, R.M., X-ray diffraction and ultrastructural analyses of dye-
altered celluloses support van der Waals forces as the initial step in cellulose crys-
tallization. Polymer 1997 , 38(4), 897-902.
43. Ben-Hayyim, G.; Ohad, I., Synthesis of cellulose by Acetobacter xylinum. VIII.
Formation and orientation of bacterial cellulose fibrils in the presence of acidic
polysaccharides. Journal of Cell Biology 1965 , 25(2), 191-207.
44. Hirai, A.; Tsuji, M.; Yamamoto, H.; Horii, F., In Situ crystallization of bacte-
rial cellulose - III. Influences of different polymeric additives on the formation of
microfibrils as revealed by transmission electron microscopy. Cellulose 1998 , 5(3),
201-13.
45. Atalla, R.H.; Hackney, J.M.; Uhlin, I.; Thompson, N.S., Hemicelluloses as structure
regulators in the aggregation of native cellulose. International Journal of Biological
Macromolecules 1993 , 15(2), 109-12.
46. Horii, F.; Yamamoto, H.; Hirai, A., Microstructural analysis of microfibrils of bac-
terial cellulose. Macromolecular Symposia 1997 , 120, 197-205.
47. Uhlin, K.I.; Atalla, R.H.; Thompson, N.S., Influence of hemicelluloses on the aggre-
gation patterns of bacterial cellulose. Cellulose 1995 , 2(2), 129-44.
Search WWH ::




Custom Search