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Each application requires tailored surface functionalization in order to take advantage of a desired property of the nanoparticles.
In order to enable tailored surface icephobicity design, research requires a good theoretical understanding of the atomistic interacting mechanisms between water/ice molecules and their adhering substrates.
This new approach to cell encapsulation is based on microfabrication technology whereby immunoisolation membranes are bulk and surface micromachined to present uniform and well-controlled pore sizes as small as 10 nm, tailored surface chemistries, and precise microarchitecture.
Utilizing this approach, nanoporous biocapsules are bulk and surface micromachined to present uniform and well-controlled pore sizes as small as 7 nm, tailored surface chemistries, and precise microarchitectures, in order to provide immunoisolating microenvironments for cells.
Their interesting bulk mechanical properties were combined to properly tailored surface topography compatible with the achievement of a superhydrophobic behavior after the deposition of a specifically designed hydrophobic coating.
This work is relevant in the context of a Transparent Conducting Oxide (TCO) thin film layer manufacturing used in thin film solar cells where it is desirable to produce thin films with precisely tailored surface morphology.
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This rough surface formed by (PLH/PGA 8 was highly reproducible and might provide unique features for the design of tailored surfaces.
The development of tailored surfaces having an optimum nanotopography and displaying suitable biosignals is proposed to be essential for future stem cell culture, cell therapy and regenerative medicine applications.
In combination with surface chemistry, tailored surfaces could be designed that mimic biological membranes very precisely.
"Tailoring surface phase transition and magnetic behaviors in BiFeO3 via doping engineering". Scientific Reports 5 (1): 9128.
Tailoring surface properties of degradable polymer scaffolds is key to progress in various tissue engineering strategies.
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