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In this paper we investigate whether the introduction of chemical functionality, such as NH2, COOH or OH, enhances compatibility with different cell types.
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Polymer coatings on particles enhance compatibility with organic ingredients, reduce susceptibility to leaching, and protect particle surfaces from oxidation.
Surfactants can be designed and synthesized to have enhanced compatibility with GNPs as compared to commercially available common surfactants.
In many cases, such modification is even necessary to enhance compatibility with hydrophobic components and to ease processing.
A significant feature in the formation of this hybrid network to enhance compatibility with hybrid materials is the formation of covalent bonding between organic polymers and inorganic compounds.
Our results showed a cell-type dependent cytotoxicity of the two monomers: 1,8-Octanediol induced less acute toxicity to 3T3 fibroblasts than Citrate while presenting comparable cytotoxicity to MG63 osteoblast-like cells; however, Citrate demonstrated enhanced compatibility with hMSCs compared to 1,8-Octanediol.
Modification also enhances compatibility of the molten polymers.
Hence, a definition of the intended focus of a measure enhances compatibility, comparisons and understanding between studies.
Surface modification of Fe3O4 nanoparticles enhances their compatibility with PS and thus their uniform dispersion in the PS matrix.
The mesogenic pendant enhances the compatibility with the LC molecules, while the non-mesogenic part reduces the possible azimuthal anchoring energy of the mesogenic side-chain on LCs.
Moreover, modification of particles surface enhances their compatibility with silicone elastomer matrix which is evidenced by the measurements of viscoelastic properties under the external magnetic field applied.
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