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This review article demonstrate the various schemes for the preparation of chitosan nanocomposites from different functional material, focusing on their application specifically in tissue engineering, drug and gene delivery, wound healing and bioimaging.
The quantity (eta(rho)), which is per se sufficient to characterize phase-space nonclassicality, has been employed to study the quantum-to-classical transition in both linear and nonlinear oscillators [4, 5, 26], as well as to characterize the performance of conditional schemes for the preparation of nonclassical states of massive oscillators [2, 27, 28].
The synthetic schemes for the preparation of 5-propynyl substituted gNTPs (gUpropTP and gCpropTP, or 1u and 1c) are shown in Figures 4 and 5. Two key intermediates, the 5-propynyl pyrimidine glycerol-nucleosides (4u and 5c), were prepared from 5-iodo-substituted precursors (3u and 3c) and propyne by Sonogashira coupling (Figure 4 and 5) [13], [13].
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Figure 7 Synthetic scheme for the preparation of the three-layer NPs (left); TEM images of colloids after each synthetic step.
Fig. 3 Synthetic scheme for the preparation of heterodimer nanoparticles by chemical makeup (Step 1) method and seed-mediated technique (Step 3) [46].
Finally,diethyl ether was evaporated and the product was vacuum-dried at room temperature resulting in the product with 80% yield. Figure 1 Reaction scheme for the preparation of pyrene-POSS and functionalization of MWCNTs with pyrene-POSS.
Figure 1 shows the experimental scheme for the preparation of the anaerobic digester samples.
A general scheme for the preparation of a CLEA is outlined in Fig. 1.
The rationale of the scheme for the preparation of GroEL substrate has been presented schematically in Figure 3.
The scheme of the preparation of PEDOT-PtNPs/SPC electrode is showed in Figure 1. Figure 1 Scheme for electrode preparation.
Figure 2 Scheme of the preparation of surface ordered structures.
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