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In summary, MMC is a feasible way to design Zn based materials with adjustable degradation rates and improved biocompatibility.
Self-assembled porous silica materials with adjustable structures and tunable pore sizes have important applications in catalysis, separation, and nanoscience.
Therefore, the combination of aliphatic and aromatic units enables molecular design of partially biobased materials with adjustable thermal and physical mechanical properties.
We supposed our approach may provide a platform of nanotechnology for preparation of porous silica materials with adjustable mesopores which would be great potential in practical applications where different sizes of molecules were involved.
The layered dielectric resonator structures composed of Ba2Ti9O20 (BTO) and Ba1.85Sm4.1Ti9O24 (BSTO) ceramic pellets were introduced to design new microwave dielectric materials with adjustable dielectric constant between 50 and 70.
Since they also mediated efficient ZnO deposition under mild conditions, the approach has yielded a new class of biotemplates which are amenable to the formation of nanostructured hybrid materials with adjustable texture for various applications.
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In this work, we report a new and facile strategy for the synthesis of N-doped nanoporous carbon materials (NNC) with adjustable nitrogen content (3.63 5.37%), large surface area (1942 m2 g−1), uniform and well-defined nanopores (∼0.85 1 nm) and high nanopore volume (0.53 0.88 cm3g−1) derived from octa aminophenyl)silsesquioxane (OAPS).
Biocompatible material platforms with adjustable properties and option for chemical modification are warranted for site-specific biomedical applications.
However, it is crucial to choose the materials for the construction of nanostructure materials and devices with adjustable physical and chemical properties.
However, it is crucial to choose the materials for the construction of nanostructure materials and devises with adjustable physical and chemical properties.
Furthermore, the correlation between the solution pH and the upper critical solution temperature (UCST) enables us to design responsive aqueous materials with a broadly adjustable transition temperature range.
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