950 resultados para 250201 Transition Metal Chemistry


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The specific energy of lithium-ion batteries (LIBs) is today 200 Wh/kg, a value not sufficient to power fully electric vehicles with a driving range of 400 km which requires a battery pack of 90 kWh. To deliver such energy the battery weight should be higher than 400 kg and the corresponding increase of vehicle mass would narrow the driving range to 280 km. Two main strategies are pursued to improve the energy of the rechargeable lithium batteries up to the transportation targets. The first is the increase of LIBs working voltage by using high-voltage cathode materials. The second is the increase of battery capacity by the development of a cell chemistry where oxygen redox reaction (ORR) occurs at the cathode and metal lithium is the anode (Li/O2 battery). This PhD work is focused on the development of high-voltage safe cathodes for LIBs, and on the investigation of the feasibility of Li/O2 battery operating with ionic liquid(IL)-based electrolytes. The use of LiMn1-xFexPO4 as high-voltage cathode material is discussed. Synthesis and electrochemical tests of three different phosphates, more safe cathode materials than transition metal oxides, are reported. The feasibility of Li/O2 battery operating in IL-based electrolytes is also discussed. Three aspects have been investigated: basic aspects of ORR, synthesis and characterization of porous carbons as positive electrode materials and study of limiting factors to the electrode capacity and cycle-life. Regarding LIBs, the findings on LiMnPO4 prepared by soluble precursors demonstrate that a good performing Mn-based olivine is viable without the coexistence of iron. Regarding Li/O2 battery, the oxygen diffusion coefficient and concentration values in different ILs were obtained. This work highlighted that the O2 mass transport limits the Li/O2 capacity at high currents; it gave indications on how to increase battery capacity by using a flow-cell and a porous carbon as cathode.

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Carboline sind eine große Gruppe von natürlich vorkommenden Alkaloiden, die eine tricyclische Pyrido[b]indol-Ringstruktur gemeinsam habe. Das breite Spektrum biologischer Eigenschaften dieser Verbindungsklasse macht sie zu einem interessanten Syntheseziel. Die größte Herausforderung in der Darstellung von Carbolinen ist die regioselektive Funktionalisierung an den aromatischen Positionen. Im Rahmen dieser Arbeit konnte ein A ABC-Zugang zu beta- und gamma-Carbolinen entwickelt werden, dessen Schlüsselschritt der Aufbau des Carbolin-Gerüsts durch eine übergangsmetall-katalysierte [2+2+2]-Cycloaddition von 1,6-Diin-Einheiten und Nitrilen ist. Die benötigten Diin-Einheiten wurden in wenigen Schritten ausgehend von 2-Iodanilin durch eine Reaktionssequenz aus Sonogashira-Reaktion mit terminalen Alkinen, N-Tosylierung und N-Ethinylierung mit Alkinyliodonium-Salzen synthetisiert. Eine flexible Funktionalisierung dieser Diine wurde durch palladium-katalysierte sp2-sp-Kreuzkupplungsreaktionen der terminalen Alkine mit Aryl- und Alkenylhalogeniden erreicht. Cp*RuCl- und [Rh(cod)2]BF4/BINAP-katalysierte [2+2+2]-Cycloadditionen der 1,6-Diine mit elektronenarmen Nitrilen lieferte in hoher Regioselektivität beta- oder gamma-Carboline. In Übereinstimmung mit literaturbekannten übergangsmetall-katalysierten [2+2+2]-Cycloadditionen konnte dabei eine starke Abhängigkeit von sterischen und elektronischen Faktoren beobachtet werden. Um das Potential dieser Methode zu demonstrieren, wurde der Einsatz der [2+2+2]-Cycloaddition in Totalsynthese von Lavendamycin untersucht. Lavendamycin, ein aus Bakterien stammendes Chinochinolin-substituiertes beta-Carbolin mit antimikrobieller und signifikanter Antitumor-Aktivität, wurde ausgehend von Hydrochinon und 2-Iodanilin in 14 Schritten und in einer Gesamtausbeute von 29% dargestellt.

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The work presented in this doctoral thesis is a facile procedure, thermal decomposition, forrnthe synthesis of different types of monodisperse heterodimer M@iron oxide (M= Cu, Co, Nirnand Pt) and single ferrites, MFe2O4 (M= Cu and Co), nanoparticles. In the following chapter,rnwe study the synthesis of these monodiperse nanoparticles with the similar iron precursorrn(iron pentacarbonyl) and different transition metal precursors such as metalrnacetate/acetylacetonate/formate precursors in the presence of various surfactants and solvents.rnAccording to their decomposition temperatures and reducing condition, a specific and suitablernroute was designed for the formation of Metal@Metal oxide or MFe2O4 nanoparticlesrn(Metal/M=transition metal).rnOne of the key purposes in the formation of nanocrystals is the development of syntheticrnpathways for designing and controlling the composition, shape and size of predictedrnnanostructures. The ability to arrange different nanosized domains of metallic and magneticrnmaterials into a single heterodimer nanostructure offers an interesting direction to engineerrnthem with multiple functionalities or enhanced properties of one domain. The presence andrnrole of surfactants and solvents in these reactions result in a variety of nanocrystal shapes. Therncrystalline phase, the growth rate and the orientation of growth parameters along certainrndirections of these structures can be chemically modulated by using suitable surfactants. In allrnnovel reported heterodimer nanostructures in this thesis, initially metals were preformed andrnthen by the injection of iron precursor in appropriate temperature, iron oxide nanoparticlesrnwere started to nucleate on the top or over the surfaces of metal nanoparticles. Ternary phasesrnof spherical CuxFe3-xO4 and CoFe2O4 ferrites nanoparticles were designed to synthesis just byrnlittle difference in diffusion step with the formation of mentioned phase separated heterodimerrnnanoparticles. In order to use these magnetic nanoparticles in biomedical and catalysisrnapplications, they should be transferred into the water phase solution, therefore they werernfunctionalized by a multifunctional polymeric ligand. These functionalized nanoparticles werernstable against aggregation and precipitation in aqueous media for a long time. Magneticrnresonance imaging and catalytic reactivities are two promising applications which have beenrnutilized for these magnetic nanoparticles in this thesis.rnThis synthetic method explained in the following chapters can be extended to the synthesis ofrnother heterostructured nanomaterials such as Ni@MnO or M@M@iron oxide (M=transitionrnmetal) or to use these multidomain particles as building blocks for higher order structures.

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In order to reduce the costs of crystalline silicon solar cells, low-cost silicon materials like upgraded metallurgical grade (UMG) silicon are investigated for the application in the photovoltaic (PV) industry. Conventional high-purity silicon is made by cost-intensive methods, based on the so-called Siemens process, which uses the reaction to form chlorosilanes and subsequent several distillation steps before the deposition of high-purity silicon on slim high-purity silicon rods. UMG silicon in contrast is gained from metallurgical silicon by a rather inexpensive physicochemical purification (e.g., acid leaching and/or segregation). However, this type of silicon usually contains much higher concentrations of impurities, especially 3d transition metals like Ti, Fe, and Cu. These metals are extremely detrimental in the electrically active part of silicon solar cells, as they form recombination centers for charge carriers in the silicon band gap. This is why simple purification techniques like gettering, which can be applied between or during solar cell process steps, will play an important role for such low-cost silicon materials. Gettering in general describes a process, whereby impurities are moved to a place or turned into a state, where they are less detrimental to the solar cell. Hydrogen chloride (HCl) gas gettering in particular is a promising simple and cheap gettering technique, which is based on the reaction of HCl gas with transition metals to form volatile metal chloride species at high temperatures.rnThe aim of this thesis was to find the optimum process parameters for HCl gas gettering of 3d transition metals in low-cost silicon to improve the cell efficiency of solar cells for two different cell concepts, the standard wafer cell concept and the epitaxial wafer equivalent (EpiWE) cell concept. Whereas the former is based on a wafer which is the electrically active part of the solar cell, the latter uses an electrically inactive low-cost silicon substrate with an active layer of epitaxially grown silicon on top. Low-cost silicon materials with different impurity grades were used for HCl gas gettering experiments with the variation of process parameters like the temperature, the gettering time, and the HCl gas concentration. Subsequently, the multicrystalline silicon neighboring wafers with and without gettering were compared by element analysis techniques like neutron activation analysis (NAA). It was demonstrated that HCl gas gettering is an effective purification technique for silicon wafers, which is able to reduce some 3d transition metal concentrations by over 90%. Solar cells were processed for both concepts which could demonstrate a significant increase of the solar cell efficiency by HCl gas gettering. The efficiency of EpiWE cells could be increased by HCl gas gettering by approximately 25% relative to cells without gettering. First process simulations were performed based on a simple model for HCl gas gettering processes, which could be used to make qualitative predictions.

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This thesis details the development of quantum chemical methods for the accurate theoretical description of molecular systems with a complicated electronic structure. In simple cases, a single Slater determinant, in which the electrons occupy a number of energetically lowest molecular orbitals, offers a qualitatively correct model. The widely used coupled-cluster method CCSD(T) efficiently includes electron correlation effects starting from this determinant and provides reaction energies in error by only a few kJ/mol. However, the method often fails when several electronic configurations are important, as, for instance, in the course of many chemical reactions or in transition metal compounds. Internally contracted multireference coupled-cluster methods (ic-MRCC methods) cure this deficiency by using a linear combination of determinants as a reference function. Despite their theoretical elegance, the ic-MRCC equations involve thousands of terms and are therefore derived by the computer. Calculations of energy surfaces of BeH2, HF, LiF, H2O, N2 and Be3 unveil the theory's high accuracy compared to other approaches and the quality of various hierarchies of approximations. New theoretical advances include size-extensive techniques for removing linear dependencies in the ic-MRCC equations and a multireference analog of CCSD(T). Applications of the latter method to O3, Ni2O2, benzynes, C6H7NO and Cr2 underscore its potential to become a new standard method in quantum chemistry.

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Das Stannylen SnHyp2 (Hyp = Si(SiMe3)3) reagiert mit den Übergangsmetallhydrid-Komplexen Cp2MH2 (Cp = C5H5, M = Mo, W) in einer alpha-Additionsreaktion zu Cp2MSn(H)Hyp2. Ferner bilden sich unter Abspaltung von HSi(SiMe3)3 auch vierkernige Verbindungen der Form [Cp2MSn(H)Hyp]2, welche für M = Mo röntgendiffraktometrisch nachgewiesen wurden. Erhöht man den sterischen Anspruch der Silylreste des Stannylens, so nimmt die Tendenz der Adduktbildung ab, so dass nur die vierkernigen Komplexe nachweisbar sind. Im Fall für SnSit2 (Sit = Si(SiMe3)2SiMe2tBu) konnten sogar Stereoisomere der vierkernigen Verbindungen [Cp2MoSn(H)Sit]2 nachgewiesen werden. Im Gegensatz dazu reagiert das Plumbylen PbHyp2 mit Cp2MoH2 in einer Substitutionsreaktion zu dem nachgewiesenen Cp2Mo(H)Hyp. Bei größer werdendem Silylrest werden andere Reaktionsabläufe bevorzugt. Auf dem Forschungsgebiet der Ein-Elektronen-Reduktion von Halogenstannanen und -plumbanen XER2R´ (X = Halogen; E = Sn, Pb; R = Silylrest; R = Aryl- / Alkylrest) mit dem 19-Elektronen-Komplex Decamethylcobaltocen CoCp*2 (Cp* = C5Me5) konnten Unterschiede zwischen den Verbindungen des Zinns und des Bleis festgestellt werden: Bei der Reduktion von Halogenstannanen fallen die erwarteten Decamethylcobaltocenium-Halogenide [CoCp*2]X aus und ESR-Messungen bestätigen die Anwesenheit von Stannylradikalen, während bei der Reduktion von hypersilylierten Halogenplumbanen unterschiedliche Folgeprodukte entstehen und Plumbylradikale via ESR-Spektroskopie nicht feststellbar sind. Bei alkylhaltigen Halogenplumbanen XPbHyp2R (R = Alkyl) findet eine Spaltung der Pb-C-Bindung statt und es bilden sich Plumbate der Form [CoCp*2][PbHyp2X], während die Reduktion von einem arylhaltigen Halogenplumban IPbHyp2Ph (Ph = Phenyl) das erwartete Decamethylcobaltocenium-Salze ergibt.

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Die vorliegende Dissertation behandelt die Anwendung Übergangsmetall-katalysierter Anellierungsreaktionen zur Synthese neuartiger Chromophore. Dabei konnten sowohl benzoide als auch nicht-benzoide Strukturen insbesondere durch den Einsatz ausgewählter Pd(0)-Komplexe dargestellt werden. Die Arbeit gliedert sich in fünf Teile: Zunächst werden innovative Pentanellierungsreaktionen mit Acetylenen an bromierten Polycyclischen Aromatischen Kohlenwasserstoffen (PAK) beschrieben, wodurch bislang unbekannte Cyclopenta-PAKs zugänglich werden. Die untersuchten neuen Verbindungen umfassen dabei sowohl einfach als auch doppelt pentanellierte Pyrene, Anthracene und Perylene mit variablem Substitutionsmuster. Auf diese Weise werden bathochrome Wellenlängenverschiebungen bis zu max = 780 nm erreicht. Im zweiten Teil wurde die Pentanellierungstechnik auf Perylenmonoimid-(PMI)-Derivate angewandt. Die resultierenden Arylcyclopenta-PMIs weisen in ihren optischen Eigenschaften starke Ähnlichkeiten zu den verwandten Perylendiimiden (PDI) auf, bieten jedoch die Möglichkeit zusätzlicher Funktionalisierungen. Die Vergrößerung des aromatischen Systems des PDI durch Hexanellierung dagegen wurde im darauffolgenden Kapitel untersucht. Analog zur bekannten homologen Reihe der Rylene (Perylen, Terrylen, Quaterrylen) konnten im Rahmen dieser Arbeit die verwandten 1,12:6,7-Coronendiimid-(CDI)-Derivate um das im Kern unsubstituierte CDI selbst und das 3,4:9,10-Dinaphtho-CDI vervollständigt werden. UV/Vis-Absorptionsmessungen zeigen auch hier eine stete bathochrome Verschiebung der Absorptionswellenlängen. Das Wissen um die Coronendiimid-Synthesen sollte im vierten Teil weiterführend zur Darstellung eines Tetraketo-CDIs genutzt werden. Die finalen Oxidationsversuche zur Einführung der Keto-Gruppen waren nicht erfolgreich, bieten jedoch Einblicke in die Reaktivität unterschiedlicher CDI-Derivate. Der letzte Teil illustriert die Anwendung der bereits zuvor beschriebenen Hexanellierungsreaktion auf Tetrabrom-Terrylendiimid (TDI) zur Darstellung eines Tetranaphtho-TDI. Letzteres bildet dabei drei Isomere aus, wobei zwei optische Aktivität zeigen. UV/Vis und Circulardichroismus-Messungen zeigen hierfür auch bei erhöhten Temperaturen bemerkenswert hohe Racemisierungsbarrieren.

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Ziel der hier vorliegenden Dissertation ist es, Übergangsmetallpivalate durch gezielte Substitution monodentater Donorliganden in apikalen Positionen, unter Erhalt ihrer Grundstruktur, zu höherdimensionalen Verbindungen zu verknüpfen. Als Ausgangs-verbindungen dienen dabei [Fe3O(O2C-tBu)6(OH2)3]O2C-tBu und [Ni2(OH2)(O2C-tBu)4(HO2C-tBu)4].rnrnIm ersten Teil dieser Arbeit konnten, in Abhängigkeit der in den Reaktionen eingesetzten Liganden mit [Fe3O(O2C-tBu)6(OH2)3]O2C-tBu, symmetrisch oder asymmetrisch substituierte dreikernige Verbindungen erhalten werden. Deren strukturellen und magnetischen Eigenschaften konnten untersucht werden und die daraus resultierenden magnetostrukturellen Korrelationen auf die folgenden vorgestellten mehrkernigen bzw. höherdimensionalen Verbindungen übertragen werden, die erheblich an Komplexität zugenommen haben.rnDie 0-dimensionalen dreikernigen Einheiten zeigen, abhängig von ihren Fe-O-Bindungslängen in den µ3-Oxo verbrückten Einheiten, unterschiedlich starke antiferro-magnetische Austauschwechselwirkungen. Wenn in den Verbindungen eine längere Fe-O-Bindung und zwei kürzere Fe-O-Bindungen existieren, können diese Typ 2:a zugeordnet werden. Daraus folgt, dass die Daten der magnetischen Suszeptibilität mit zwei unterschiedlich starken Austauschwechselwirkungen (J-Kopplungen) zu simulieren sind. Es liegen eine stärkere J-Kopplung über die kurzen Fe-O-Bindungen und zwei schwächere über die lange Fe-O-Bindung vor (J1 > J2). Existieren hingegen eine kürzere Fe-O-Bindung und zwei längere Fe-O-Bindungen (Typ 2:b) sind nun die magnetischen Suszeptibilitätsdaten nur mit zwei stärkeren und einer schwächeren Kopplung zu simulieren (J1 < J2). Die vorgestellten Verbindungen zeigen alle einen Spingrundzustand S≠0, der durch konkurrierende Wechselwirkungen der Spinzentren in Dreieckssituationen begründet ist. rnDer zweite Teil der Arbeit beschäftigte sich mit dem gezielten Aufbau mehrkerniger Verbindungen, in denen die dreikernige Einheit als Grundmotiv erhalten bleiben konnte. Die Austauschwechselwirkungen der fünf- und sechskernigen Verbindungen konnten in Abhängigkeit der Bindungslängen und basierend auf den Ergebnissen der dreikernigen Einheiten aus dem ersten Teil, bestimmt werden. rnDie Synthesen der 4-Hydroxybenzaldehyd verbrückten Kettenverbindung sowie des über 3,5,3’,5’-Tetramethyl-1H,1’H-[4,4’]bipyrazolyl verknüpften 3-dimensionalen Nickelnetzwerks zeigten die erfolgreiche Umsetzung des „Bottom Up“ Ansatzes. Durch Erhaltung des jeweiligen Grundmotivs der verwendeten Ausgangsverbindung konnten die magnetischen Austauschwechselwirkungen unter Einbeziehung schwacher Wechselwirkungen durch den Raum, mit Hilfe der Theta-Weiss Temperatur, in den Simulationen bestimmt werden.rnrnDamit stellt der „Bottom Up“ Ansatz eine hervorragende Syntesestrategie für den Aufbau höherdimensionaler Verbindungen, ausgehend von zwei- bzw. dreikernigen Übergangs-metallkomplexen, dar.rn

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The demands for energy is leading to social and political conflicts in the world. For example, the limited resources of fossil fuels causing a dependence on the oil conveying countries in the world, leading to political discords. One way to save energy is to increase the efficiency of a process. In the field of thermoelectricity waste heat is used to produce electricity, this leads to an improvement of the efficiency. Heusler compounds with C1b structure with the general formula XY Z (X, Y = transition metal, Z = main group element) are in focus of the present thermoelectric research. Their mechanical and thermal stability is exceptional in comparison to the commonly used thermoelectric materials. The possibility to substitute small amounts of elements from the parent compound without destructing the lattice structure allows tuning the electronic properties. This tunability also allows to avoid the use of toxic and expensive elements. The reported thermoelectric Heusler compounds exhibit high electrical conductivity and moderate values of the Seebeck coefficients, which lead to a high powerfactor. The disadvantage of Heusler compounds is their high thermal conductivity. Introducing mass disorder on the X-site lattice is one effective way to produce additional phonon scattering and with it to decrease the thermal conductivity. Another approach is to implement a nano or micro structure in the thermoelectric material. This can be achieved by phase separation, composite materials, pulverization with additional spark plasma sintering or by a complex lattice structure. In the first part of this work, the influence of element substitutions on the Zr0.5Hf0.5NiSn system was investigated, to obtain the knowledge on how to optimize the electronic properties of the Heusler compounds with C1b structure. In line with this, the change of the electronic structure was investigated and a possible mechanism is predicted. In the second part of this work, the phenomenon of phase separation was investigated. First, by applying a phase separation in the well-known system Co2MnSn and subsequently by systematic investiga- tions on the TixZryHfzNiSn. In the third part, the results from the previous parts before were used to produce and explain the best reported Heusler compound with C1b structure exhibiting a Figure of Merit of ZT= 1.2 at 830 K.

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Thermoelectric generators (TEG) are solid state devices and are able to convert thermal energy directly into electricity and thus could play an important role in waste heat recovery in the near future. Half-Heusler (HH) compounds with the general formula MNiSn (M = Ti, Zr, Hf) built a promising class of materials for these applications because of their high Seebeck coefficients, their environmentally friendliness and their cost advantage over conventional thermoelectric materials.rnrnMuch of the existing literature on HH deals with thermoelectric characterization of n-type MNiSn and p-type MCoSb compounds. Studies on p-type MNiSn-based HHs are far fewer in number. To fabricate high efficient thermoelectric modules based on HH compounds, high performance p-type MNiSn systems need to be developed that are compatible with the existing n-type HH compounds. This thesis explores synthesis strategies for p-type MNiSn based compounds. In particular, the efficacy of transition metals (Sc, La) and main group elements (Al, Ga, In) as acceptor dopants on the Sn-site in ZrNiSn, was investigated by evaluating their thermoelectric performance. The most promising p-type materials could be achieved with transition metal dopants, where the introduction of Sc on the Zr side, yielded the highest Seebeck coefficient in a ternary NiSn-based HH compound up to this date. Hall effect and band gap measurements of this system showed, that the high mobility of minority carrier electrons dominate the transport properties at temperatures above 500 K. It could be shown that this is the reason, why n-type HH are successful TE materials for high temperature applications, and that p-types are subjected to bipolar effects which will lead to diminished thermoelectric efficiencies at high temperatures.rnrnTo complement the experimental investigations on different metal dopants and their influence on the TE properties of HH compounds, numerical solutions to the Boltzmann transport equation were used to predict the optimum carrier concentration where the maximum TE efficiency occurs for p-type HH compounds. The results for p-type samples showed that can not be treated within a simple parabolic band model approach, due to bipolar and multi-band effects.rnrnThe parabolic band model is commonly used for bulk TE materials. It is most accurate when the transport properties are dominated by one single carrier type. Since the transport properties of n-type HH are dominated by only one carrier type (high mobility electrons), it could be shown, that the use of a simple parabolic band model lead to a successful prediction of the optimized carrier concentration and thermoelectric efficiency in n-type HH compounds. rn

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Das Ziel der vorliegenden Arbeit waren die Synthese und Untersuchung von Modellverbindungen zur Sauerstoffaktivierung auf der Basis neuer Ligandensysteme des 1,3,4-Thiadiazols unter Ausarbeitung einer Synthesestrategie zur Derivatisierung der heteroaromatischen 1,3,4-Thiadiazol-Liganden, deren Koordinationsverhalten in Abhängigkeit ihres 2,5-Substitutionsmusters untersucht wurde, sowie die fortführende Bearbeitung bereits bekannter Ligandensysteme zur Erzeugung von homo- und heterovalenten Übergangsmetallkomplexverbindungen.rnDie unter der Verwendung der modifizierten Liganden TPDE, H1TPDP und H1BPMP resultierenden dinuklearen Komplexverbindungen zeigen unterschiedlich starke antiferromagnetische Wechselwirkungen in Abhängigkeit der vorhandenen Brückenliganden. In der Verbindung [Fe6O2(OH)(L´)2(OOCMe3)9(OEt)2] trat eine Fragmentierung des Liganden H1TPDP auf. Das cisoide Ligandensubstitutionsmuster der entstandenen sechskernigen Verbindung ist verantwortlich für die interessanten magnetischen Eigenschaften des Komplexes. rnNeue Perspektiven zur Erzeugung von Modellverbindungen zur Sauerstoffaktivierung wurden mit dem Mono-Chelatliganden H1ETHP und den Bis-Chelatliganden HL2H, H2L2H und H2BATP aufgezeigt. Die Umsetzung von H1ETHP mit verschiedenen Übergangsmetallsalzen resultierte für die Metalle Cr(III), Fe(III), Co(III) und Ni(II) in mononuklearen Verbindungen des Typs [M(ETHP)2]X (X = ClO4, FeCl4, OMe, Cl, Br) sowie in zwei tetranuklearen Verbindungen mit Mn(II) und Cu(II). [Mn4(ETHP)6] besitzt ein propellerförmiges, planares [Mn4O6]2+-System mit einen Spingrundzustand von S = 5. In allen Verbindungen von H1ETHP konnte eine mono-κN-Koordination des 1,3,4-Thiadiazol-Rückgrates über eines seiner beiden endozyklischen Stickstoffdonoratome beobachtet werden. rnAus Umsetzungen der Bis-Chelatliganden wurden fast ausschließlich polynukleare Übergangsmetallkomplexe erhalten. Insbesondere der Ligand H2L2H zeigt eine ausgeprägte Tendenz zur Ausbildung trinuklearer, linearer Komplexe, welche auf Grund ihrer ungeraden Anzahl von Übergangsmetallionen einen Spingrundzustand S ≠ 0 aufweisen.rn Die mit dem Liganden HL2H erhaltenen Verbindungen unterstreichen die hohe Flexibilität dieser Systeme hinsichtlich der Erzeugung polynuklearer und heterovalenter Komplexverbindungen. So konnten in Abhängigkeit vom verwendeten Übergangsmetallsalz trinukleare, pentanukleare, aber auch hepta- und oktanukleare Verbindungen synthetisiert werden. Insbesondere die Komplexe des Mangans und des Cobalts zeigen ein heterovalentes [MnIIMnIII4]- bzw. [CoII2CoIII3]-Motiv, was sich in Spingrundzuständen von S ≠ 0 äußert. Der diamagnetische, achtkernige Fe8-Cluster besitzt eine pseudo C3-symmetrische Anordnung der Metall-Zentren, während für die heptanukleare Cu7-Kette durch ihre stark unterschiedlichen Kupfer-Koordinationsgeometrien interessante magnetische Austauschwechselwirkungen beobachtet werden konnten. Der dreikernige µ3-oxo-verbrückte Komplex des Liganden H2BATP zeigt als interessante strukturelle Eigenschaft ein ein µ3-Verbrückungsmuster des eingesetzten Sulfat-Anions. rnIn allen Komplexen der Bis-Chelatliganden HL2H, H2L2H und H2BATP konnte ein µ2-κN,κN-Koordiantionsmodus des 1,3,4-Thiadiazols und somit eine Abhängigkeit der Verbrückung vom Ligandensubstitutionsmuster beobachtet werden.rn

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In the literature, some transition metal salts have been used as soft Lewis acids to activate alkynes toward nucleophilic attack. For example, Pt(II), Au(I) and Pd(II) catalysts can catalyze cycloisomerization reactions of alkynyl compounds to give a variety of cyclic products. In order to expand the scope of these reactions, in chapter 2 of this dissertation, several alkynyl epoxides were isomerized to cyclic allyl vinyl ethers using PtCl2 as the catalyst. Three of these allyl vinyl ethers were hydrolyzed to 2-hydroxymorpholine derivatives and two were converted to piperidine derivatives by thermal Claisen rearrangement. In order to find more benign and inexpensive catalysts for these types of reactions, in chapter 3 of this dissertation, BiCl3 was used to catalyze the isomerization of eight enynes to pyrrolidine derivatives. This reaction was normally catalyzed by expensive noble metal catalysts, such as Pd(II), Pt(II) and Au(I). All the cyclic products are valuable intermediates in the synthesis of bioactive molecules, these soft Lewis acid catalyzed cycloisomerization may find applications in the synthesis of bioactive molecules.

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Mo(VI) oxo complexes have been persistently sought after as epoxidation catalysts. Further, Mo(V) oxo clusters of the form M4(µ3-X)4 (M = transition metal, X = O, S) have been rigorously studied due to their remarkable structures and also their usefulness as models for electronic studies. The syntheses and characterizations of new Mo(VI) and Mo(V) oxo complexes have been described in this dissertation. Two new complexes MoO2Cl2Ph2P(O)CH2COOH and MoO2Cl2Ph2P(O)C6H4tBuS(O) were synthesized from reactions of “MoO2Cl2” with ligands Ph2P(O)CH2COOH and Ph2P(O)C6H4tBuS(O). Tetrameric packing arrangements comprised of hydrogen bonds were obtained for the complex MoO2Cl2Ph2P(O)CH2COOH and the ligand Ph2P(O)CH2COOH. Further the stability of an Mo-O bond was preferred over the Mo-S bond even though this resulted in the formation of a more strained seven membered ring. Tetranuclear Mo(V) complexes of the form [Mo4(µ3-O)4(µ-O2PR2)4O4], (PR2 = PPh2, PMe2) were synthesized using reactions of MoO2(acac)2 with diphenyl and dimethyl phosphinic acids, in ethanol. In the crystal structure of these complexes four Mo=O units are interconnected by four triply bridging oxygen atoms and bridging phosphinate ligands. The complex exhibited fourfold symmetry as evidenced by a single 31P NMR peak for the P atoms in the coordinated ligands. Reaction of WO2(acac)2 with Ph2POOH in methanol resulted in a dimeric W(VI) complex [(CH3O)2(O)W(µ-O)( µ-O2PPh2)2W(O)(CH3O)2] which contained a packing disorder in its crystal structure. Similar reactions of MoO2(acac)2 with benzoic acid derivatives resulted in dimeric complexes of the form [Mo2O2(acac)2(µ-O)(µ-OC2H5)(µ-O2CR)] (R = C6H5, (o-OH)C6H4, (p-Cl)C6H4, (2,4-(OH)2)C6H3, (o-I)C6H4) and one tetrameric complex [Mo2O2(acac)2(µ-O)(µ-OC2H5)(µ-O2C)C6H4(p-µ-O2C)Mo2O2(acac)2(µ-O)(µ-OC2H5)] with terephthalic acid. 1H NMR proved very useful in the prediction of the formation of dimers with the substituted benzoic acids, which were also confirmed by elemental analyses. The reductive capability of ethanol proved instrumental in the syntheses of Mo(V) tetrameric and dimeric clusters. Synthetic details, IR, 1H and 31P NMR spectroscopy and elemental analyses are reported for all new complexes. Further, single crystal X-ray structures of MoO2Cl2Ph2P(O)CH2COOH, MoO2Cl2Ph2P(O)C6H4tBuS(O), [Mo4(µ3-O)4(µ-O2PR2)4O4], (PR2 = PPh2, PMe2), [(CH3O)2(O)W(µ-O)( µ-O2PPh2)2W(O)(CH3O)2] and [Mo2O2(acac)2(µ-O)(µ-OC2H5)(µ-O2CR)] (R = C6H5, (o-OH)C6H4) are also presented.

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A one-pot, general synthesis of highly functionalized quateraryls through carbanion-induced, base-catalyzed ring transformation of 5,6-diaryl-2H-pyran-2-ones and core-substituted phenylacetones is delineated. These conversions were found to give diversely functionalized benzenes bearing peripheral aryl rings, some of which possess inherent atropisomerism. Exemplarily for one of the quateraryls, the optical resolution of the respective atropo-enantiomers by HPLC on a chiral phase and the assignment of their absolute axial configurations succeeded by LC-CD coupling in combination with semiempirical CNDO/S and TDDFT CD calculations. This synthetic approach offers – in a transition metal-free environment – high flexibility in the construction of quateraryls with the desired conformational freedom along the molecular axis, which may help in exploring and developing new potential ligands for asymmetric synthesis.

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Using molecular building blocks to self-assemble lattices supporting long-range magnetic order is currently an active area of solid-state chemistry. Consequently, it is the realm of supramolecular chemistry that synthetic chemists are turning to in order to develop techniques for the synthesis of structurally well-defined supramolecular materials. In recent years we have investigated the versatility and usefulness of two classes of molecular building blocks, namely, tris-oxalato transition-metal (M. Pilkington and S. Decurtins, in “Magnetoscience—From Molecules to Materials,” Wiley–VCH, 2000), and octacyanometalate complexes (Pilkington and Decurtins, Chimia 54, 593 (2001)), for applications in the field of molecule-based magnets. Anionic, tris-chelated oxalato building blocks are able to build up two-dimensional honeycomb-layered structural motifs as well as three-dimensional decagon frameworks. The discrimination between the crystallization of the two- or three-dimensional structures relies on the choice of the templating counterions (Decurtins, Chimia 52, 539 (1998); Decurtins et al. Mol. Cryst. Liq. Cryst. 273, 167 (1995); New J. Chem. 117 (1998)). These structural types display a range of ferro, ferri, and antiferromagnetic properties (Pilkington and Decurtins, in “Magnetoscience—From Molecules to Materials”). Octacyanometalate building blocks self-assemble to afford two new classes of cyano-bridged compounds namely, molecular clusters and extended three dimensional networks (J. Larionova et al., Angew. Chem. Int. Ed. 39, 1605 (2000); Pilkington et al., in preparation). The molecular cluster with a MnII9MoV6 core has the highest ground state spin value, S=51/2, reported to-date (Larionova et al., Angew. Chem. Int. Ed. 39, 1605 (2000)). In the high-temperature regime, the magnetic properties are characterized by ferromagnetic intracluster coupling. In the magnetic range below 44 K, the magnetic cluster signature is lost as possibly a bulk behavior starts to emerge. The three-dimensional networks exhibit both paramagnetic and ferromagnetic behavior, since the magnetic properties of these materials directly reflect the electronic configuration of the metal ion incorporated into the octacyanometalate building blocks (Pilkington et al., in preparation). For both the oxalate- and cyanide-bridged materials, we are able to manipulate the magnetic properties of the supramolecular assemblies by tuning the electronic configurations of the metal ions incorporated into the appropriate molecular building blocks (Pilkington and Decurtins, in “Magnetoscience—From Molecules to Materials,” Chimia 54, 593 (2000)).