Composites with Immobilized Bioactive Spirulina on an Inorganic Substrate (Yellow Clay, Hydroxyapatite, SiO 2 , TiO 2 , ZnO).
Klaudia KowalskaEwa SkwarekEvgeny DemianenkoVictoria PaientkoPublished in: Chemphyschem : a European journal of chemical physics and physical chemistry (2024)
In order to improve the structural properties of clays and composites of powdered spirulina, clay, nanosilica, hydroxyapatite, TiO 2 and ZnO were used as an additive for mechanical processing. As a result, composites with natural nanostructured materials (NNM) are prepared with improved structural properties and bioactivity. The mixtures based on NNM with crystalline kaolinite, clays and admixtures were processed in a knife mill. The materials were characterized using FTIR spectroscopy, nitrogen adsorption and desorption, SEM release of bioactive components (anthocyanin 0,004-0,07 mg/g; chlorophyll 20-29 mg/g), composite toxicity level (below 25%), particle size measurement and surface charge density, zeta potential. Adsorption enthalpies during the formation of an intermolecular complex during the interactions of an anthocyanin molecule with the appropriate component of the composite were also calculated. There are regularities in the characteristics depending on the type of NNM, particle morphology and textural features of solids. The morphological and structural properties of the components changed slighty in the blends because the processing was conducted under relatively low mechanical stress. The morphological, textural and structural characteristics of the composites as well as the transformation to a nanostructured state, assume great bioactive activity of the composites, interesting for practical applications in medicine and cosmetics.
Keyphrases
- visible light
- reduced graphene oxide
- aqueous solution
- quantum dots
- gold nanoparticles
- room temperature
- tissue engineering
- ionic liquid
- high resolution
- mass spectrometry
- lactic acid
- energy transfer
- risk assessment
- water soluble
- climate change
- bone regeneration
- human health
- solid state
- oxide nanoparticles
- structural basis
- perovskite solar cells
- magnetic nanoparticles