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Tatsiana Shutava

Publications and source records attributed to Tatsiana Shutava.

3 recordsLinked to original sources

Layer-by-layer nanocoating of lignocellulose fibers for enhanced paper properties.

The systematic modification of the surface charge of lignocellulose fibers was performed with a polyelectrolyte layer-by-layer (LbL) nanocoating process to produce negatively and positively charged fibers. The fibers were coated with 20-50 nm thick polymer surface layers which subsequently increased interaction between the fibers during paper formation. The modified fibers were added to standard fibers at varying proportions to produce paper with corresponding variation in properties such as strength and electrical conductivity. Paper strength was doubled by manipulating the surface charge and coating thickness of the LbL-treated pulp fibers. It is demonstrated that the LbL coating process increased the fiber interactions and that these interactions enhanced the paper properties. This process, when applied to a simulated sample of recycle grade of fibers, produce paper with an increase in tear strength as compared with untreated fiber paper. Nanocoating fibers with polythiophene/polyallylamine multilayers produced marginally conductive pulp and paper. Paper electrical conductivity was proportional to the number of the bilayers deposited.

Adsorption↗

Microcapsule modification with peroxidase-catalyzed phenol polymerization.

A biocatalytic polymer synthesis on a surface of polyelectrolyte microcapsules was studied. Horseradish peroxidase assembled in nanoorganized capsule walls by alternate adsorption with linear polyions retains its activity in reactions of enzyme-catalyzed polymerization of 4-oxyphenols. It allowed controllable synthesis of a phenolic polymer layer on microcapsule walls using an outermost surface peroxidase layer as a template. By varying the phenol type, buffer pH, and reaction component concentrations, the phenolic polymer coating of the capsules with a thickness in the range 20-50 nm was formed. The polymeric products are fluorescent, which provided a good opportunity for confocal image analysis of the capsule wall structure and the attached layer. The influence of a phenolic polymer layer on the permeability of the capsule walls was investigated.

Catalysis↗