2 resultados para Aloimunização Rh
em Universitätsbibliothek Kassel, Universität Kassel, Germany
Resumo:
Ziel dieser Arbeit war, durch Aziridinierung homochiraler 5-Methyl-4H-1,3-dioxinen eine neue Methode zur Synthese von alpha-Aminoaldehyden und den ableitbaren Aminosäuren mit alpha-quartären Zentren zu entwickeln. Die chiralen 5-Methyl-4H-1,3-dioxine sind mit hohen Enantiomerenüberschüssen durch asymmetrische Doppelbindungsisomerisierung von 5-Methylen-1,3-dioxanen zugänglich. Die Metall-katalysierte Aziridinierung der 5-Methyl-4H-1,3-dioxine mit der Nitrenquelle (N-Tosylimino)phenyliodinan führte direkt zu N-Tosyl-geschützen 4-Methyl-1,3-oxazolidin-4-carbaldehyden. Vermutlich über ein Aziridin als nicht isolierbare Zwischenstufe werden über eine Ringöffnungs-/Ringverengungsreaktion die Oxazolidinderivate gebildet, vorzugsweise in Gegenwart von Cu(I)-Katalysatoren, während die Rhodium-katalysierte Reaktion ausschließlich zu Insertionsprodukten führt. In der Cu-katalysierten Aziridinierung ist das Verhältnis von Aziridinierung/Insertion abhängig von der Katalysatorkonzentration. Die Aziridinierung mit N-(p-Nitrobenzolsulfonyl)- und N-(Trimethylsilylethylsulfonyl)- substituierten Nitrenquellen führt zu Oxazolidinderivaten mit leichter abspaltbaren Schutzgruppen. Diese Nitrenquellen können in situ aus den korrespondierenden Sulfonamiden mit Iodosobenzol dargestellt werden. Bei dem Einsatz homochiraler 4H-1,3-Dioxine ist Erhalt der Stereoinformation abhängig vom Substituenten in 2-Position der Dioxine sowie von der Polarität des Lösungsmittels. Die höchsten Selektivitäten wurden in tert-Butylmethylether erzielt. In Falle des 2-tert-Butyl-4-methyl-3-(toluol-4-sulfonyl)-1,3-oxazolidin-4-carbaldehyds kristallisiert das Hauptdiastereomer in enantiomerenreiner Form. Die Absolutkonfiguration wurde durch Röntgenkristallstrukturanalyse ermittelt. Das Anwendungspotential dieser neuen Methode konnte durch Überführen der Serinale in Aminoalkohole und alpha-Methylserin-Derivate sowie in der Synthese der unnatürlichen Aminosäure alpha-Vinylalanin gezeigt werden.
Resumo:
Research on transition-metal nanoalloy clusters composed of a few atoms is fascinating by their unusual properties due to the interplay among the structure, chemical order and magnetism. Such nanoalloy clusters, can be used to construct nanometer devices for technological applications by manipulating their remarkable magnetic, chemical and optical properties. Determining the nanoscopic features exhibited by the magnetic alloy clusters signifies the need for a systematic global and local exploration of their potential-energy surface in order to identify all the relevant energetically low-lying magnetic isomers. In this thesis the sampling of the potential-energy surface has been performed by employing the state-of-the-art spin-polarized density-functional theory in combination with graph theory and the basin-hopping global optimization techniques. This combination is vital for a quantitative analysis of the quantum mechanical energetics. The first approach, i.e., spin-polarized density-functional theory together with the graph theory method, is applied to study the Fe$_m$Rh$_n$ and Co$_m$Pd$_n$ clusters having $N = m+n \leq 8$ atoms. We carried out a thorough and systematic sampling of the potential-energy surface by taking into account all possible initial cluster topologies, all different distributions of the two kinds of atoms within the cluster, the entire concentration range between the pure limits, and different initial magnetic configurations such as ferro- and anti-ferromagnetic coupling. The remarkable magnetic properties shown by FeRh and CoPd nanoclusters are attributed to the extremely reduced coordination number together with the charge transfer from 3$d$ to 4$d$ elements. The second approach, i.e., spin-polarized density-functional theory together with the basin-hopping method is applied to study the small Fe$_6$, Fe$_3$Rh$_3$ and Rh$_6$ and the larger Fe$_{13}$, Fe$_6$Rh$_7$ and Rh$_{13}$ clusters as illustrative benchmark systems. This method is able to identify the true ground-state structures of Fe$_6$ and Fe$_3$Rh$_3$ which were not obtained by using the first approach. However, both approaches predict a similar cluster for the ground-state of Rh$_6$. Moreover, the computational time taken by this approach is found to be significantly lower than the first approach. The ground-state structure of Fe$_{13}$ cluster is found to be an icosahedral structure, whereas Rh$_{13}$ and Fe$_6$Rh$_7$ isomers relax into cage-like and layered-like structures, respectively. All the clusters display a remarkable variety of structural and magnetic behaviors. It is observed that the isomers having similar shape with small distortion with respect to each other can exhibit quite different magnetic moments. This has been interpreted as a probable artifact of spin-rotational symmetry breaking introduced by the spin-polarized GGA. The possibility of combining the spin-polarized density-functional theory with some other global optimization techniques such as minima-hopping method could be the next step in this direction. This combination is expected to be an ideal sampling approach having the advantage of avoiding efficiently the search over irrelevant regions of the potential energy surface.