906 resultados para Dihedral angle


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The conformation analysis and study on structure-taste relation-ships of 4 taste compounds have been performed, the results reveal that the sweetnees will decrease with the increase of the specific dihedral angle O-1-C-2-C-3-C-4, and the mechanism was intepreted.

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In the title molecule, C16H11N5, the mean planes of the quinoxaline and indazole fragments form a dihedral angle of 10.62 (5). In the crystal, weak intermolecular N—H..........N hydrogen bonds link the molecules into zigzag chains extending in the [001] direction. The crystal packing also exhibits pye interactions [centroid–centroid distances of 3.7080 (2) and 3.8220 (5) A ˚ ], which form stacks of the molecules parallel to the a axis

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The title compound, C11H9N3O2, exists in the E conformation with respect to the azomethane C N bond, and has the keto form. There are two independent molecules in the asymmetric unit and each of these features a slight slanting of the pyridine and furan rings, which form a dihedral angle of 14.96 (10) in one of the molecules and 5.53 (10) in the other. The crystal structure is stabilized by N—H O and N—H N hydrogen bonds, weak C—H O and C—H N hydrogen bonds and C—H interactions and – interactions [shortest centroid–centroid distance = 3.7864 (15) A ° ].

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The theory of rotational-pucker-vibrational transitions in the vibrational spectrum of cyclobutane is reviewed. Puckering sideband structure on the 1453 cm-1v14 infra-red fundamental of C4H8 has been observed and analysed, in terms of two slightly different puckering potential functions for the ground and the excited vibrational states. The results have been fitted to quartic-quadratic potential functions in the puckering coordinate, with a barrier to inversion of 503 cm-1 (1•44 kcal mole-1 = 6•02 kJ mole-1) in the ground state and 491 cm-1 in the excited state ν14 = 1. For reasonable assumptions about the reduced mass, the equilibrium dihedral angle of the C4 ring is determined to be about 35°, in agreement with previous estimates. Ueda and Shimanouchi's observations on the 2878 cm-1 C4H8 band have been re-analysed, and puckering sidebands have also been observed and analysed for the 1083 cm-1v14 infra-red fundamental of C4D8. Pure puckering transitions have been observed in the Raman spectrum of C4H8 vapour. All of these observations are shown to be consistent with the same ground state puckering potential function.

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In the crystal structure of the title compound (systematic name: 5H-dibenzo[a,d]cycloheptatriene-5-carboxamide ethanoic acid solvate), C16H13NO center dot C2H4O2, the cytenamide and solvent molecules form a hydrogen-bonded R-2(2)(8) dimer motif, which is further connected to form a centrosymmetric double ring motif arrangement. The cycloheptene ring adopts a boat conformation and the dihedral angle between the least-squares planes through the two aromatic rings is 54.7 (2)degrees.

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The non-electrolyte dichloro(hydroxy-methoxy-di(2-pyridylmethane)copper(II), resulting from the reaction of di(2-pyridyl)ketone and copper(II) chloride in methanol solution, was isolated and characterized and its structure was determined by X-ray diffraction. The pyridyl nitrogens and the chloride anions virtually from a basal plane in which lies the copper atom, while the oxygen of the methoxy group is in an apical position at a distance of 2.497 (3)Å. The nitrogenous base adopts the boat conformation with the pyridyl rings forming a dihedral angle of 108.72 (14)°. The nearest interatomic copper distance of 3.940(3)Å precludes copper-copper interactions, while the proximity of copper to the out-of-plane chlorine atoms [3.109(3)Å] suggests weakly bound chloro-bridged dimers. Spectral changes indicate that protic molecules displace the methoxy group and water affords the corresponding 1,1-diol.

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Photochemical and photophysical properties of 1-(2-quinolyl)-2-naphthol (2QN) in water and organic solvents, as well in glassy media were studied to investigate the occurrence of intramolecular excited state prototropic reactions between the naphthol and quinoline rings. Spectral data show the two chromophores apparently behaving independently. However, in acid aqueous media or in low polarity solvents a new electronic transition red shifted band with respect to that of the parent compounds assigned to an intramolecular H-bond and to a quinoid form, respectively, shows up. Model calculations and R-X data lend support to a minimum energy conformer having a dihedral angle of similar to 39 degrees between the two groups. Singlet excited state properties (S-1) show a high suppressive effect of one ring over the other, resulting in very low emission yields at room temperature. The occurrence of excited state intramolecular proton transfer is observed in water (zwitter ion form) and in low polarity media (quinoid form) and originates from a previously CT H-bonded state. Phosphorescence data allowed a reasonable description of the electronic states of 2QN. In addition two new derivatives were prepared having the N atom blocked by methylation and both the N and O groups blocked by a CH2 bridge. The spectral data of these two compounds confirmed the attributions made for 2QN. (C) 2007 Elsevier B.V. All rights reserved.

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The simple halogenation of alkynes in conventional organic reactions gives a blend of cis and trans isomers. It is proposed then, a synthesis of stereospecific halogenation of alkynes in trans position, using palladacycle as intermediaries. The recrystallization of the compound obtained by bromination of 2-Styrylpyridine, with cyclepalladium intermediary results in a single crystal, which is subjected to X-ray diffraction. The crystal packing is established through weak interactions of three types. The first one is of the type pi x pi interactions, from symmetry operation, between the centroids. The second one is of the type C-X center dot center dot center dot pi interactions. And the last type is an anomalous intermolecular interaction between halogens, C-X center dot center dot center dot X-C, with bond distances smaller than the sum of the van der Waals radii. The conformation on the C=C bond is trans and the dihedral angle between the aromatic rings is (with esd approximate) 18.1(3)degrees. (C) 2010 Elsevier B.V. All rights reserved.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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The crystal structure of benzoyl-histidine monohydrate (BYLH hereafter), C-13H-12N-3O-3. H2O was determined from three dimensional data of 3012 independent reflections measured on a Enraf-Nonius (CAD4) single crystal diffractometer. The compound crystallizes in the orthorhombic space group P2(1)2(1)2(1) with cell dimensions alpha = 7.102(1) angstrom, b = 13.783(3) angstrom, c = 14.160(4) angstrom, V = 1385.92 angstrom-3, F.W. = 277.28, F(000) = 584 Q(calc) = 1.32 g cm-3 and Z = 4.The structure was solved with direct methods. All positional and anisotropic thermal parameters were refined by full-matrix least-squares calculations. The final reliability factor was R = 0.040, while the weighted one was Rw = 0.034. The H atoms found in the difference Fourier map were refined isotropically.The compound consists of a histidine molecule bound to a benzoyl group. There is also a cocrystallized water molecule stabilized through a hydrogen bridge.The 5-membered ring of the histidine has its tautomeric form, after the transfer of the H atom from the N(delta) to the N(epsilon) atom of the ring. There is an sp2 conformation around C6 while the conformation around C3 is that of sp3. The histidine ring forms with the benzene ring a dihedral angle of 109.8(1)-degree.All angle values and bond distances agree very well with the expected values in the literature.

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Nesta tese, investigamos detalhadamente as propriedades de transporte eletrônico, conformacional e de simetria de estruturas de Nanotubos de Carbono de Parede Simples zigzag (9,0), NCPS zz9, acopladas a anéis fenilas (2, 3, 4 e 5) sob influência de campo elétrico externo (voltagem) via método híbrido da Teoria do Funcional Densidade (DFT) do tipo B3LYP 6-311G(d,p) combinado com Função de Green de Não Equilíbrio (FGNE) e Teoria de Grupo. Verificamos uma boa relação entre: 1- o índice quiral () por Teoria de Grupo e a lei do cos2 (, ângulo diedral) por geometria sob a influência de campo elétrico externo, pois  só depende das posições atômicas (), das conformações, e também está fortemente correlacionada a corrente que passa através do sistema; 2- a condutância normalizada (G/Go) é proporcional a cos2 na região do gap (EHOMO-ELUMO), isto é, nas regiões onde ocorre a ressonância e a resistência diferencial negativa (RDN); 3- o gráfico Fowler-Northeim (FN) exibe mínimo de voltagem (Vmin) que ocorre sempre que a cauda de um pico de transmissão ressonante entra na janela de voltagem, isto é, quando nessas estruturas ocorre uma RDN, pois o número de RDN na curva I-V está associado ao número de Vmin no gráfico FN e pode ser explicado pelo modelo de transporte molecular coerente; 4- a altura da barreira (EF - EHOMO e ELUMO - EF) como função do comprimento molecular; 5- Vmin como função da altura da barreira (EF - EHOMO) e do comprimento molecular. Assim, 1 implica que a conformação molecular desempenha um papel preponderante na determinação das propriedades de transporte da junção; 2 sugere que a lei do cos2 tem uma aplicabilidade mais geral independentemente da natureza dos eletrodos; 3 serve como um instrumento espectroscópico e também para identificar a molécula na junção; 4 e 5 a medida que o comprimento molecular atinge um certo valor (1,3nm) o Vmin permanece praticamente inalterado. Os resultados mostraram que as propriedades estruturais sofrem alterações significativas com o aumento da voltagem que estão em boa concordância com os valores encontrados na literatura. O comportamento das curvas IxV e G/GoxV perdem sua dependência linear para dar origem a um comportamento não linear com aparecimento de RDN. Tal ponto revela a modificação estrutural sofrida pelo sistema. A curva IxV confirmou as afirmações que foram feitas através da análise estrutural para o sistema considerado e mostrou como se dá o fluxo de carga nos sistemas analisados.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Gegenstand der vorliegenden Arbeit war die Synthese von organischen Photoschalter-Modellen auf der Basis von mesoionischen Pyrimidinium-olaten und Bis(thienylperfluorocyclopentenen), sowie die Darstellung substituierter Biphenyl-Biradikale als Modelle für Ventil-Systeme im Sinne eines neuen Schalter-Ventil-Konzeptes.Aufbauend auf meiner Arbeit über mesoionische Pyrimidinium-olate wurde ein henkelverbrücktes Ansa-Mesoion mit einem 16-gliedrigen Makrocyclus, sowie drei mehrcyclische mesoionische Systeme synthetisiert und auf ihr Schaltverhalten hin untersucht. Das Ansa-Mesoion stellt ein erstes einfaches Modell für Schalter-Ventil-Konjugate dar. Zur Darstellung der photochromen Bis(thienylethene) wurden die aus der Literatur bekannten Syntheserouten nach Irie als auch nach Feringa auf neue Strukturen angewandt und die Schalteigenschaften der Bis(thienylethene) optisch nachgewiesen. Die Anordnung der reaktiven Endgruppen in den synthetisierten Verbindungen schafft ideale Voraussetzungen für eine große konformelle Änderung, welche im Schalter-Ventil-Konjugat erwünscht ist. Durch vielfaches Durchlaufen des Schaltprozesses (> 100 Cyclen) konnte die hohe Reversibilität des Schaltvorganges belegt werden.Als Ventilmodelle wurden mit stabilen Nitroxidradikalen substituierte Biphenyle verwendet, deren primärer konformativer Freiheitsgrad durch die Drehung um die Phenyl-Phenyl-Einfachbindung gegeben ist. Experimentelle ESR-Daten und deren Vergleich mit Spektrensimulationen bestätigten die Abhängigkeit der Austauschwechselwirkung J zwischen den Radikalen vom Biphenyldiederwinkel.

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In this thesis different approaches for the modeling and simulation of the blood protein fibrinogen are presented. The approaches are meant to systematically connect the multiple time and length scales involved in the dynamics of fibrinogen in solution and at inorganic surfaces. The first part of the thesis will cover simulations of fibrinogen on an all atom level. Simulations of the fibrinogen protomer and dimer are performed in explicit solvent to characterize the dynamics of fibrinogen in solution. These simulations reveal an unexpectedly large and fast bending motion that is facilitated by molecular hinges located in the coiled-coil region of fibrinogen. This behavior is characterized by a bending and a dihedral angle and the distribution of these angles is measured. As a consequence of the atomistic detail of the simulations it is possible to illuminate small scale behavior in the binding pockets of fibrinogen that hints at a previously unknown allosteric effect. In a second step atomistic simulations of the fibrinogen protomer are performed at graphite and mica surfaces to investigate initial adsorption stages. These simulations highlight the different adsorption mechanisms at the hydrophobic graphite surface and the charged, hydrophilic mica surface. It is found that the initial adsorption happens in a preferred orientation on mica. Many effects of practical interest involve aggregates of many fibrinogen molecules. To investigate such systems, time and length scales need to be simulated that are not attainable in atomistic simulations. It is therefore necessary to develop lower resolution models of fibrinogen. This is done in the second part of the thesis. First a systematically coarse grained model is derived and parametrized based on the atomistic simulations of the first part. In this model the fibrinogen molecule is represented by 45 beads instead of nearly 31,000 atoms. The intra-molecular interactions of the beads are modeled as a heterogeneous elastic network while inter-molecular interactions are assumed to be a combination of electrostatic and van der Waals interaction. A method is presented that determines the charges assigned to beads by matching the electrostatic potential in the atomistic simulation. Lastly a phenomenological model is developed that represents fibrinogen by five beads connected by rigid rods with two hinges. This model only captures the large scale dynamics in the atomistic simulations but can shed light on experimental observations of fibrinogen conformations at inorganic surfaces.

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The title compound, C(34)H(24)Cl(4)N(4)O(8)S, is a linear penta-cyclic system formed of two substituted benzoxazinyl groups fused to 2-n-butyl-tetra-hydro-thio-phene. The oxazine ring, which is fused to the n-butyl-substituted side of the thio-phene ring, is in a boat conformation. The other fused oxazine ring and the tetra-hydro-thiene ring are each in an envelope conformation. The bridgehead C atom alpha to both the S and N atoms forms the flap of each envelope. This results in a twist of the penta-cyclic system such that the dihedral angle between the terminal dichloro-benzene rings is 82.92 (8)°. In the crystal, inversion-related mol-ecules form a weakly hydrogen-bonded dimer, with two C-H⋯O inter-actions between an H atom on the oxazine ring and an amide O atom. Additionally, C-H⋯O inter-actions occur between an H atom on a screw-related nitro-benzene ring and an O atom on the nitro-benzene ring of one mol-ecule. One of the Cl atoms and the butyl group are disordered over two sets of sites with occupancy ratios of 0.94 (2):0.06 (2) and 0.624 (4):0.376 (4), respectively.