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31.
Reported herein is an iridium‐catalyzed, regioselective silylation of the aromatic C H bonds of benzylamines and the benzylic C H bonds of 2,N‐dialkylanilines. In this process, (hydrido)silyl amines, generated in situ by dehydrogenative coupling of benzylamine or aniline with diethylsilane, undergo selective silylation at the C H bond γ to the amino group. The products of this silylation are suitable for subsequent oxidation, halogenation, and cross‐coupling reactions to deliver benzylamine and arylamine derivatives.  相似文献   
32.
Reported herein is the iridium‐catalyzed regio‐ and enantioselective allylic substitution reactions of unstabilized silyl dienolates derived from dioxinones. Asymmetric allylic substitution of a variety of allylic trichloroethyl carbonates with these silyl dienolates gave γ‐allylated products selectively in 60–84 % yield and 90–98 % ee.  相似文献   
33.
The steric effects of substituents on five-membered rings are less pronounced than those on six-membered rings because of the difference in bond angles. Thus, the regioselectivities of reactions of five-membered heteroarenes that occur with selectivities dictated by steric effects, such as the borylation of C−H bonds, have been poor in many cases. We report that the silylation of five-membered-ring heteroarenes occurs with high sterically derived regioselectivity when catalyzed by the combination of [Ir(cod)(OMe)]2 (cod=1,5-cyclooctadiene) and a phenanthroline ligand or a new pyridyl-imidazoline ligand that further increases the regioselectivity. The silylation reactions with these catalysts produce high yields of heteroarylsilanes from functionalization at the most sterically accessible C−H bonds of these rings under conditions that the borylation of C−H bonds with previously reported catalysts formed mixtures of products or products that are unstable. The heteroarylsilane products undergo cross-coupling reactions and substitution reactions with ipso selectivity to generate heteroarenes that bear halogen, aryl, and perfluoroalkyl substituents.  相似文献   
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An increasing demand for biomaterials corresponds to the deficiency in the knowledge on biocompatibility. To increase this knowledge the modification of polymer surfaces, their characterization, and the investigation of the response of the biosystem is considered to be a suitable approach. Surface modification may be performed in the wet-chemical way (heterogeneous reaction) or by means of treatment with a suitable plasma (glow discharge). Surface sensitive methods such as X-ray photoelectron spectroscopy, infrared spectroscopy in the attenuated total reflexion mode as well as surface energy measurements are useful for surface characterization. To determine the bioresponse to the polymer surface, enzyme-linked immunosorbent assays, cell growth and full blood tests may be used. In the present paper several systems are described with respect to their surface modification, characterization, and bioresponse. It is shown that the protein adsorption is triggered by the surface, that SO2 plasma treatment enhances cell growth and that there seems to be a biocompatibility window for a surface characterized by a ξ-potential between −4 and −8 mV and a ratio of dispersive to polar contributions of surface energy around 12. It is stressed, however, that the final solution for a biomaterial is a material which, in the course of degradation, constantly presents a new biocompatible surface.  相似文献   
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The anionic and/or insertion copolymerization of 2,2-dimethyltrimethylene carbonate (DTC) with ϵ-caprolactone (ECL), pivalolactone (PVL) and L-lactide (LLA) is presented with special emphasis on the copolymerization mechanism. Statistical copolymers are obtained by copolymerization of DTC with ECL and with LLA, while with PVL a block copolymer is obtained. The role of transesterification on the microstructure is discussed.  相似文献   
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We report the regioselective and enantioselective formal hydroamination of unsymmetrical internal alkenes catalyzed by a copper catalyst ligated by DTBM‐SEGPHOS. The regioselectivity of the reaction is controlled by the electronic effects of ether, ester, and sulfonamide groups in the homoallylic position. The observed selectivity underscores the influence of inductive effects of remote substituents on the selectivity of catalytic processes occurring at hydrocarbyl groups, and the method provides direct access to various 1,3‐aminoalcohol derivatives with high enantioselectivity.  相似文献   
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