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Développement de nouvelles réactions radicalaires sans étain en glycochimie : élaboration de spirocétals et débenzylations régiosélectives / Development of new tin-free radical reactions in glycochemistry : elaboration of spiroketals and regioselective de-O-benzylationAttouche, Angie 11 February 2011 (has links)
Ces travaux de thèse ont consisté à développer de nouvelles réactions radicalaires dans le domaine de la glycochimie. Deux cascades radicalaires, n’utilisant aucun dérivé stannylé et impliquant un transfert d’hydrogène intramoléculaire, ont été étudiées. La première permet de synthétiser des motifs spirocétaliques [6.5] nonanomériques et la deuxième consiste à débenzyler régiosélectivement un éther de benzyle par proximité. Les spirocétals [6.5] nonanomériques sont des motifs présents dans de nombreuses structures de produits naturels. Pour obtenir ce squelette, dont la synthèse est généralement difficile, nous avons développé une cascade radicalaire en chaîne impliquant des précurseurs homopropargyliques et des dérivés phosphorés non toxiques. Plusieurs étapes se succèdent dont l’addition du radical phosphoré sur la triple liaison, un transfert 1,5 d’hydrogène permettant de générer un radical anomère de O-glycoside, à l’origine de la diastéréosélectivité du centre spiranique, et une cyclisation 5-exo-trig. Cette stratégie s’est révélée particulièrement efficace puisque de bons rendements et une excellente diastéréosélectivité ont été obtenus notamment en série glucose et glucosamine. La nouvelle réaction de O-débenzylation par proximité, développée dans la deuxième partie, permet de déprotéger sélectivement un éther de benzyle en α d’un groupement hydroxyle préalablement fonctionnalisé sous forme d’éther de silyle xanthate. Cette réaction se déroule en deux étapes successives dans le même ballon. La première est une cascade radicalaire constituée, entre autres, d’un transfert 1,7 d’hydrogène et de l’addition du radical benzylique, ainsi formé, sur le peroxyde de dilauroyle. L’acétal mixte intermédiaire obtenu est alors hydrolysé lors de la deuxième étape. Cette méthodologie a été appliquée avec succès à divers mono- et disaccharides polybenzylés et s’est révélée efficace en présence de nombreuses autres fonctionnalités chimiques (acétal de benzylidène, azido..). / The aim of this thesis was the development of new tin-free radical reactions in the field of glycochemistry. For this purpose, an intramolecular hydrogen atom transfer was the key step of these methodologies. The first reaction allowed the access to nonanomeric [6.5] spiroketals and the second one is a new regioselective de-O-benzylation reaction through proximity effect. The nonanomeric [6.5] spiroketals are widely distributed in natural products and have been difficult to access. To synthesize this scaffold, we have developed a chain radical cascade involving homopropargyl precursors and non-toxic phosphorus derivatives. The phosphorus-centered radical adds to the triple bond followed by a radical translocation through intramolecular hydrogen atom transfer. This key step of the reaction provides an intermediate O-glycoside anomeric radical, which ensure the diastereoselectivity of the reaction. Finally a 5-exo-trig cyclization yields the desired spiroketal. This strategy has been proved to be highly efficient since good yields and selectivity were obtained especially in glucose and glucosamine series. The new regioselective de-O-benzylation reaction through proximity effect, developed in the second part, allowed the deprotection of a benzyl ether in α position of a hydroxyl group previously functionalized as a xanthate silyl ether. This reaction occurs in two successive steps in the same flask. The first one is a radical cascade involving an 1,7 intramolecular hydrogen atom transfer and the addition of the newly formed benzylic radical on dilauroyl peroxide. The mixed ketal intermediate thus obtained is then hydrolyzed during the second step. This methodology has been successfully applied to several polybenzylated mono- and disaccharides and tolerates the presence of various chemical functions (benzylidene ketal, azido...) showing its versatility.
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Mathematical Foundations of Quantum Mechanics / Kvantfysikens Matematiska GrunderIsraelsson, Anders January 2013 (has links)
No description available.
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The Phase-Integral Method, The Bohr-Sommerfeld Condition and The Restricted Soap Bubble : with a proposition concerning the associated Legendre equationGhaderi, Hazhar January 2011 (has links)
After giving a brief background on the subject we introduce in section two the Phase-Integral Method of Fröman & Fröman in terms of the platform function of Yngve and Thidé. In section three we derive a different form of the radial Bohr-Sommerfeld condition in terms of the apsidal angle of the corresponding classical motion. Using the derived expression, we then show how easily one can calculate the exact energy eigenvalues of the hydrogen atom and the isotropic three-dimensional harmonic oscillator, we also derive an expression for higher order quantization condition. In section four we derive an expression for the angular frequencies of a restricted (0≤φ≤β) soap bubble and also give a proposition concerning the parameters l and m of the associated Legendre differential equation. / Vi använder Fröman & Frömans Fas-Integral Metod tillsammans med Yngve & Thidés plattformfunktion för att härleda kvantiseringsvilkoret för högre ordningar. I sektion tre skriver vi Bohr-Sommerfelds kvantiseringsvillkor på ett annorlunda sätt med hjälp av den så kallade apsidvinkeln (definierad i samma sektion) för motsvarande klassiska rörelse, vi visar också hur mycket detta underlättar beräkningar av energiegenvärden för väteatomen och den isotropa tredimensionella harmoniska oscillatorn. I sektion fyra tittar vi på en såpbubbla begränsad till området 0≤φ≤β för vilket vi härleder ett uttryck för dess (vinkel)egenfrekvenser. Här ger vi också en proposition angående parametrarna l och m tillhörande den associerade Legendreekvationen.
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Hydrogen electrochemistry in room temperature ionic liquidsMeng, Yao January 2012 (has links)
This thesis primarily focuses on the electrochemical properties of the H<sub>2</sub>/H<sup>+</sup> redox couple, at various metallic electrodes in room temperature ionic liquids. Initially, a comprehensive overview of room temperature ionic liquids, RTILs, compared to conventional organic solvents is presented which identifies their favourable properties and applications, followed by a second chapter describing the basic theory of electrochemistry. A third chapter presents the general experimental reagents, instruments and measurements used in this thesis. The results presented in this thesis are summarized in six further chapters and shown as follows. (1) Hydrogenolysis, hydrogen loaded palladium electrodes by electrolysis of H[NTf<sub>2</sub>] in a RTIL [C<sub>2</sub>mim][NTf<sub>2</sub>]. (2) Palladium nanoparticle-modified carbon nanotubes for electrochemical hydrogenolysis in RTILs. (3) Electrochemistry of hydrogen in the RTIL [C<sub>2</sub>mim][NTf<sub>2</sub>]: dissolved hydrogen lubricates diffusional transport. (4) The hydrogen evolution reaction in a room temperature ionic liquid: mechanism and electrocatalyst trends. (5) The formal potentials and electrode kinetics of the proton_hydrogen couple in various room temperature ionic liquids. (6) The electroreduction of benzoic acid: voltammetric observation of adsorbed hydrogen at a Platinum microelectrode in room temperature ionic liquids. The first two studies show electrochemically formed adsorbed H atoms at a metallic Pt or Pd surface can be used for clean, efficient, safe electrochemical hydrogenolysis of organic compounds in RTIL media. The next study shows the physicochemical changes of RTIL properties, arising from dissolved hydrogen gas. The last three studies looked at the electrochemical properties of H<sub>2</sub>/H<sup>+</sup> redox couple at various metallic electrodes over a range of RTILs vs a stable Ag/Ag<sup>+</sup> reference couple, using H[NTf<sub>2</sub>] and benzoic acid as proton sources. The kinetic and thermodynamic mechanisms of some reactions or processes are the same in RTILs as in conventional organic or aqueous solvents, but other remarkably different behaviours are presented. Most importantly significant constants are seen for platinum, gold and molybdenum electrodes in term of the mechanism of proton reduction to form hydrogen.
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