LAUSR.org creates dashboard-style pages of related content for over 1.5 million academic articles. Sign Up to like articles & get recommendations!

Toxicological impact of morphology and surface functionalization of amorphous SiO2 nanomaterials

Photo from wikipedia

Abstract Amorphous silica nanomaterials (SiO2NMs) with tubular - nanotube (NT) and spherical - nanohank (NH) morphologies were synthesized. The surfaces of these SiO2NMs were amine functionalized (AF) with 3-[2-(2-aminoetylamine)ethylamine]propyltrimethoxysilane (SiO2NM@AF).… Click to show full abstract

Abstract Amorphous silica nanomaterials (SiO2NMs) with tubular - nanotube (NT) and spherical - nanohank (NH) morphologies were synthesized. The surfaces of these SiO2NMs were amine functionalized (AF) with 3-[2-(2-aminoetylamine)ethylamine]propyltrimethoxysilane (SiO2NM@AF). The amorphous structure was verified by XRD and the amine functionalization was confirmed by FTIR spectroscopy, surface area, and zeta potential results. The toxicological evaluation of the SiO2NMs was performed using acute and chronic toxicity tests with aquatic microcrustaceans Daphnia magna and a cell viability test with Vero cells. All of the SiO2NH tests showed higher toxicity compared to SiO2NT, due to the spherical shape and larger surface area of the former. The SiO2NM@AF, regardless of the morphology (NT or NH), were more toxic, despite their increased size and reduced surface area. In all cases evaluated, chronic toxicity tests showed a decrease in the reproduction and growth of the organisms, as the NM concentration increased.

Keywords: surface area; toxicological impact; surface; impact morphology; functionalization

Journal Title: NanoImpact
Year Published: 2017

Link to full text (if available)


Share on Social Media:                               Sign Up to like & get
recommendations!

Related content

More Information              News              Social Media              Video              Recommended



                Click one of the above tabs to view related content.