3 resultados para Ketene Valence Isomers
em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha
Resumo:
Die vorliegende Arbeit beschäftigt sich mit der Synthese arenoanellierter Naphthothiete und Benzobisthiete, sowie mit der Umsetzung der aus diesen Thieten thermisch generierbaren Valenzisomeren (Thiochinonmethide). Diese Thiochinonmethide sind hochreaktive Diensysteme, die mit zahlreichen Dienophilen (homo- und hetero-Doppel- und Dreifachbindungssysteme) nach Diels-Alder abreagieren, die dabei entstehenden S-Heterocyclen können im Sechsring noch weitere Heteroatome (N, P, O, S) enthalten. Daraus resultiert ein großes Potential der Arenothiete zur Synthese neuer Thioheterocyclen. Durch die erstmals gelungene Synthese der beiden Benzobisthiete 2H,3H-Benzo[1,2-b:4,3-b']bisthiet und 1H,4H-Benzo[2,1-b:3,4-b']bisthiet mit gewinkelter Anellierungsgeometrie hat das synthetische Spektrum der aus Arenothieten darstellbaren Thioheterocyclen nochmal eine deutliche Erweiterung erfahren.
Die Darstellung der Arenothiete erfolgt in einer mehrstufigen Synthese, in deren finalem Schritt sie mittels Blitz-Vakuum-Pyrolyse aus Arylhydroxymethylthiolen gebildet werden, dabei wird das Edukt mittels molekularer Strömung in den "Reaktor" eingebracht. Da die Arylhydroxymethylthiole in der Regel nur eine sehr geringe Flüchtigkeit haben, waren die Arenothiete meist nur in geringen Mengen darstellbar. Daher wurde in dieser Arbeit sowohl die Synthese neuer Arenothiete (gewinkelte Benzobisthiete) als auch eine Optimierung der bisherigen Synthesemethode angestrebt; diese erfolgt bevorzugt durch Variation der Pyrolyseedukte in Richtung zu potentiell höherflüchtigen Verbindungen.
Im Rahmen dieser Versuche war die Darstellung zweier Arenothiete ausgehend von cyclischen O,S-Acetalen als alternative Pyrolysevorstufen erfolgreich.
Ein besonderes Interesse speziell an Benzobisthieten begründet sich in ihrer generellen Fähigkeit zum Aufbau von bandartigen Strukturen durch Oligo- und Poly-Diels-Alder-Reaktionen. Durch die Synthese einiger Modellverbindungen konnte ihre prinzipielle Eignung zum Aufbau von Bandstrukturen auch für die beiden Benzobisthiete belegt werden.
Resumo:
In the course of this work the effect of metal substitution on the structural and magnetic properties of the double perovskites Sr2MM’O6 (M = Fe, substituted by Cr, Zn and Ga; M’ = Re, substituted by Sb) was explored by means of X-ray diffraction, magnetic measurements, band structure calculations, Mößbauer spectroscopy and conductivity measurements. The focus of this study was the determination of (i) the kind and structural boundary conditions of the magnetic interaction between the M and M’ cations and (ii) the conditions for the principal application of double perovskites as spintronic materials by means of the band model approach. Strong correlations between the electronic, structural and magnetic properties have been found during the study of the double perovskites Sr2Fe1-xMxReO6 (0 < x < 1, M = Zn, Cr). The interplay between van Hove-singularity and Fermi level plays a crucial role for the magnetic properties. Substitution of Fe by Cr in Sr2FeReO6 leads to a non-monotonic behaviour of the saturation magnetization (MS) and an enhancement for substitution levels up to 10 %. The Curie temperatures (TC) monotonically increase from 401 to 616 K. In contrast, Zn substitution leads to a continuous decrease of MS and TC. The diamagnetic dilution of the Fe-sublattice by Zn leads to a transition from an itinerant ferrimagnetic to a localized ferromagnetic material. Thus, Zn substitution inhibits the long-range ferromagnetic interaction within the Fe-sublattice and preserves the long-range ferromagnetic interaction within the Re-sublattice. Superimposed on the electronic effects is the structural influence which can be explained by size effects modelled by the tolerance factor t. In the case of Cr substitution, a tetragonal – cubic transformation for x > 0.4 is observed. For Zn substituted samples the tetragonal distortion linearly increases with increasing Zn content. In order to elucidate the nature of the magnetic interaction between the M and M’ cations, Fe and Re were substituted by the valence invariant main group metals Ga and Sb, respectively. X-ray diffraction reveals Sr2FeRe1-xSbxO6 (0 < x < 0.9) to crystallize without antisite disorder in the tetragonal distorted perovskite structure (space group I4/mmm). The ferrimagnetic behaviour of the parent compound Sr2FeReO6 changes to antiferromagnetic upon Sb substitution as determined by magnetic susceptibility measurements. Samples up to a doping level of 0.3 are ferrimagnetic, while Sb contents higher than 0.6 result in an overall antiferromagnetic behaviour. 57Fe Mößbauer results show a coexistence of ferri- and antiferromagnetic clusters within the same perovskite-type crystal structure in the Sb substitution range 0.3 < x < 0.8, whereas Sr2FeReO6 and Sr2FeRe0.9Sb0.1O6 are “purely” ferrimagnetic and Sr2FeRe0.1Sb0.9O6 contains antiferromagnetically ordered Fe sites only. Consequently, a replacement of the Re atoms by a nonmagnetic main group element such as Sb blocks the double exchange pathways Fe–O–Re(Sb)–O–Fe along the crystallographic axis of the perovskite unit cell and destroys the itinerant magnetism of the parent compound. The structural and magnetic characterization of Sr2Fe1-xGaxReO6 (0 < x < 0.7) exhibit a Ga/Re antisite disorder which is unexpected because the parent compound Sr2FeReO6 shows no Fe/Re antisite disorder. This antisite disorder strongly depends on the Ga content of the sample. Although the X-ray data do not hint at a phase separation, sample inhomogeneities caused by a demixing are observed by a combination of magnetic characterization and Mößbauer spectroscopy. The 57Fe Mößbauer data suggest the formation of two types of clusters, ferrimagnetic Fe- and paramagnetic Ga-based ones. Below 20 % Ga content, Ga statistically dilutes the Fe–O–Re–O–Fe double exchange pathways. Cluster formation begins at x = 0.2, for 0.2 < x < 0.4 the paramagnetic Ga-based clusters do not contain any Fe. Fe containing Ga-based clusters which can be detected by Mößbauer spectroscopy firstly appear for x = 0.4.
Resumo:
Study of K isomerism in the transfermium region around the deformed shells at N=152, Z=102, and N=162, Z=108 provides important information on the structure of heavy nuclei. Recent calculations suggest that the K-isomerism can enhance the stability of such nuclei against alpha emission and spontaneous fission. Nuclei showing K isomerism have neutron and proton orbitals with large spin projections on the symmetry axis which is due to multi quasiparticle states with aligned spins K. Quasi-particle states are formed by breaking pairs of nucleons and raising one or two nucleons in orbitals near the Fermi surface above the gap, forming high K (multi)quasi-particle states mainly at low excitation energies. Experimental examples are the recently studied two quasi-particle K isomers in 250,256-Fm, 254-No, and 270-Ds. Nuclei in this region, are produced with cross sections ranging from several nb up to µb, which are high enough for a detailed decay study. In this work, K isomerism in Sg and No isotopes was studied at the velocity filter SHIP of GSI, Darmstadt. The data were obtained by using a new data acquisition system which was developed and installed during this work. 252,254-No and 260-Sg were produced in fusion evaporation reactions of 48-Ca and 54-Cr projectiles with 206,208-Pb targets at beam energies close to the Coulomb barrier. A new K isomer was discovered in 252-No at excitation energy of 1.25 MeV, which decays to the ground state rotational band via gamma emission. It has a half-life of about 100 ms. The population of the isomeric state was about 20% of the ground state population. Detailed investigations were performed on 254-No in which two isomeric states (275 ms and 198 µs) were already discovered by R.-D. Herzberg, but due to the higher number of observed gamma decays more detailed information about the decay path of the isomers was obtained in the present work. In 260-Sg, we observed no statistically significant component with a half life different from that of the ground state. A comparison between experimental results and theoretical calculations of the single particle energies shows a fair agreement. The structure of the here studied nuclei is in particular important as single particle levels are involved which are relevant for the next shell closure expected to form the region of the shell stabilized superheavy elements at proton numbers 114, 120, or 126 and neutron number 184. K isomers, in particular, could be an ideal tool for the synthesis and study of these isotopes due to enhanced spontaneous fission life times which could result in higher alpha to spontaneous fission branching ratios and longer half lifes.