Otrzymywanie nanocząstek substancji bioaktywnych metodą sonochemiczną w kierunku ich osadzania na powierzchniach biomateriałów polimerowych Sonochemical synthesis of bioactive nanoparticles towards direct embedding into polymeric biomaterials surfaces
Nanomaterials are the latest group of materials which owes its special features thanks to their nanosize. The most characteristic properties include the large surface
area, strong chemical reactivity and tendency to agglomerate. Nanomaterials
have wide applications in several disciplines, i.e. materials engineering, medicine
and food technology. These materials have high potential in biomedical engineering
thanks to increased biological activity when compared with the bulk material.
Recent advances in nanotechnology are currently mostly focused on improvement
of effective synthesis methods. Sonochemical irradiation is an effective technique
for the synthesis nanoparticles. This method is widely used for inorganic nanoparticles
production in contrast to organic ones, which could open powerful possibilities
of creating bioactive, therapeutic or self-cleaning surfaces.
In principle, the introduction of a strong acoustic field into an aqueous solution
induces acoustic cavitation. The nucleation, growth and collapse of the bubble
during acoustic cavitation are graphically shown in Figure 1. When the bubble
reaches a certain size it become resonant with ultrasonic radiation and rapidly
increase in size. Then, the bubble becomes unstable and violently collapses. The
collapse of microbubbles produces extremely high localized pressures and temperatures
(hundreds bar and thousands K) which lead to hot spot. Conditions of sonochemistry
are rather radical in comparison to other chemical processes. Moreover,
the synthesis and simultaneously embedding nanoparticles into polymer surfaces
are possible.
This paper constitutes a review of the recent literature in sonochemical synthesis
of organic, bioactive nanoparticles. The introduction will focus on a short
overview of sonochemistry, the next part will present the mechanism of formation
nanoparticles using ultrasounds. Also, some advantages of sonochemistry as a tool
for nanomaterials fabrication is presented. In the next section some examples of
bioactive nanoparticles prepared in sonochemical reaction are listed and advantages
of sonochemical synthesis are discussed.
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