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Number of results
2016 | 21 | 18-26

Article title

MOLECULAR STRUCTURE AND FORMATION OF CHITOSAN AND PECTIN BASED THIN FILMS

Content

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Languages of publication

EN

Abstracts

EN
In this study using methods of Atomic force microscopy (AFM) and Quartz crystal microbalance with dissipation monitoring (QCM-D) the special characteristics of formation and architecture of thin films coatings based on natural polysaccharides chitosan and pectin were investigated. A layer-by-layer (LbL) deposition technique for assembling of oppositely charged layers was used. The main factors, which have an influence on the process of thin film formation and molecular structure of these coatings, were investigated.

Year

Volume

21

Pages

18-26

Physical description

Contributors

  • Research Center of Biotechnology RAS Leninsky Ave. 33, bld. 2, Moscow, Russia
  • Research Center of Biotechnology RAS Leninsky Ave. 33, bld. 2, Moscow, Russia
  • Research Center of Biotechnology RAS Leninsky Ave. 33, bld. 2, Moscow, Russia

References

  • [1] Gu C.-H., Wang J.-J., Yu Y.., Sun H.; (2013) Biodegradable multilayer barrier films based on alginate/polyethyleneimine and biaxially oriented poly(lactic acid). Carbohydrate Polymers, Vol. 92, 1579-1585. DOI: 10.1016/j.carbpol.2012.11.004.
  • [2] Dutta P.K., Tripathi Sh., Mehrotra G.K., Dutta J.; (2009) Perspectives for chitosan based antimicrobial films in food applications. Food Chemistry, Vol.114, 1173-1182. DOI: 10.1016/j.foodchem.2008. 11.047.
  • [3] Riul Jr. A., de Sousa H.C., Malmegrim R.R. et al.; (2004) Wine classification by taste sensors made from ultra-thin films and using neural networks. Sensors and Actuators B, Vol. 98, 77-82. DOI: 10.1016/j.snb.2003.09.025.
  • [4] Zhang L., Webster T.J.; (2009) Nanotechnology and nanomaterials: Promises for improved tissue regeneration. Nano Today, Vol. 4, 66-80. DOI:10.1016/j.nantod.2008.10.014.
  • [5] Hammond P.T.; (2000) Recent explorations in electrostatic multilayer thin film assembly. Current Opinion in Colloid & Inteface Science, Vol. 4, 430-442. DOI: 10.1016/S1359-0294(00)00022-4.
  • [6] Boddohi S., Almodovar J., Zhang H., Johnson P.A., Kipper M.J.; (2010) Layer-by layer assembly of polysaccharide-based nanostructured surfaces containing polyelectrolyte complex nanoparticles. Colloids and Surfaces B: Biointerfaces, Vol.77, 60-68. DOI: 10.1016/j.colsurfb.2010.01.006.
  • [7] Hillberg A.L., Holmes Ch.A., Tabrizian M.; (2009) Effect of genipin cross-linking on the cellular adhesion properties of layer-by-layer assembled polyelectrolyte films. Biomaterials, Vol. 30, 4463-4470. DOI: 10.1016/j.biomaterials.2009.05.026.
  • [8] Sigolaeva L. V., Gunther U., Pergushov D. V., Gladyr S. Yu., Kurochkin I. N., Schacher F. N.; (2014) Sequential pH-Dependent adsorption of ionic amphiphilic diblock copolymer micelles and choline oxidase onto conductive substrates: toward the design of biosensors. Macromol. Biosci., Vol. 14, 1039-1051. DOI:10.1002/mabi.201300580.
  • [9] Oura K., Lifshits V. G, Saranin A.A., Zotov A.V., Katayama M.; (2003) Surface science: an introduction. Springer, Berlin. DOI: 10.1007/978-3-662-05179-5.
  • [10] Guyomard A., Muller G., Glinel K.; (2005) Buildup of multilayers based on amphiphilic polyelectrolytes. Macromolecules, Vol. 38, 5737-5742. DOI: 10.1021/ma050867n.

Document Type

article

Publication order reference

Identifiers

YADDA identifier

bwmeta1.element.psjd-ed54bcea-7502-40e9-b288-4ededbe46076
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