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Toward further improving its activity, tremendous efforts have been made to preferentially expose active edge sites of molybdenum sulphide-based catalysts by engineering their surface structure.
Here we show the feasibility to modulate endocytosis of amino-PEG coated CdSe/CdS QRs by engineering their surface chemistry and identified by a functional assay a membrane protein triggering their uptake.
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Over 4 orders of magnitude enhancement of PL intensity is observed at room temperature by engineering their nanostructures and chemically modifying their surfaces.
This work demonstrates new sights for synthesizing high-efficient and environment-stable photocatalysts by engineering the surface heterojunction.
In addition, controlling enzyme orientation by engineering the surface immobilization site demonstrated that structures can be well-correlated to measured chemical activity.
Besides the usefulness of the SKP technique for mobility studies, we demonstrate a selective control of the superficial ion mobility by engineering the surface fixed charges.
Rev. B 69 (2004) 121402], and subsequently the substantial enhancement of the directional emission was achieved by engineering the surface and adjusting relevant parameters [S.K. Morrison et al., Appl. Phys. Lett. 86 (2005) 081110].
It is demonstrated that the reduction- reoxidation method applied here is simple, easily control, and beneficial for the design and realization of heterogeneous core-shell nanostructured photocatalysts to improve visible and infrared optical absorption by engineering the surface disorder and the oxygen vacancies inside core of Bi2MoO6 nanoplates and the related nanostructured photocatalysts.
Hence in this work, we have achieved enhanced hydrophobic surface (i.e., for 3- and 5-fold symmetry chiral nano-flowers) by engineering the sample surface via sculptured thin film deposition to produce chiral nano-flowers.
An approach to overcome this sluggish kinetics is by engineering the oxide surface with a lower oxygen incorporation barrier.
This work systematically demonstrates the effect of biocarbon surface chemistry on the properties of nylon-biocarbon biocomposites and that they can be designed for specific applications by engineering the biocarbon surface through pyrolysis.
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