3 Structural Peculiarities and Properties of Silver-Containing Polymer. . .
61
Fig. 3.8 Images of
antimicrobial test results of
agar plates containing
IPEC–Ag nanocomposites,
obtained via the
thermoreduction and
chemical reduction of Ag +
ions in the IMC against E.
coli (a) and S. aureus (b)
Table 3.2 Antimicrobial activity of the IPEC–Ag nanocomposites, prepared via the thermoreduction and chemical reduction of Ag + ions in the IMC
The method of obtaining nanocomposite films Diameter of inhibition zone, mm
Staphylococcus aureus Escherichia coli
Thermoreduction
IPEC–Ag
IPEC–Ag
27.6 ± 1.2
26.6 ± 1.2
Chemical reduction
IPEC–Ag
IPEC–Ag
18.2 ± 0.8
17.6 ± 0.6
Control sample
IPEC
IPEC
0
0
References
1. Demchenko V, Riabov S, Rybalchenko N, Goncharenko L, Kobylinskyi S, Shtompel V (2017)
X-ray study of structural formation, thermomechanical and antimicrobial properties of coppercontaining polymer nanocomposites obtained by the thermal reduction method. Eur Polym J
96:326–336
2. Demchenko V, Shtompel V, Riabov S (2016) Nanocomposites based on interpolyelectrolyte
complex and Cu/Cu 2 O core–shell nanoparticles: structure, thermomechanical and electric
properties. Eur Polym J 75:310–316
3. Demchenko VL, Shtompel VI, Riabov SV (2015) DC field effect on the structuring and
thermomechanical and electric properties of nanocomposites formed from pectin–Cu 2+ –
polyethyleneimine ternary polyelectrolyte–metal complexes. Polym Sci A 57:635–643
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