975 resultados para Tero, Josep -- Intervius


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Tese de mestrado em Biologia Humana e Ambiente, apresentada à Universidade de Lisboa, através da Faculdade de Ciências, 2015

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UANL

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UANL

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This thesis questions the major esthetic differences between the artistic productions of the Second Spanish Republic (1931-1939) and the nationalist artistic productions of the Civil War years and the first decade of the francoist dictatorship. These differences are analysed using the artistic productions of Josep Renau (1907 Valence – 1982 Berlin East) and of Ignacio Zuloaga (Elibar 1870 – Madrid 1945). Renau was an important artistic figure during the Spanich Republic. In this thesis, we analyse Renau’s different propaganda productions between 1931 and 1939. Zuloaga was an international artist when the nationalist uprising occurred in 1936. He was recognized by the European elites for his portraits of Andalousian and Castillian sceneries. Zuloaga supported the nationalist putsch and the francoist ideology. In 1939, the Caudillo ordered the painting of the portrait that we will be analysing. The theories of François Hartog, Reinhart Koselleck, Paul Ricoeur and Hannah Arendt are used to analyse the historical conceptual confrontation in Spain, portrayed by the artworks that we studied. During the Republic, it was the modern historical regime that was in force. The historical references used are close in time and the history is constructed in the future and attached to the idea of progress. With the nationalists, the historical conception is connected to the Historia magistra where the past is used as an example. In the first francoism, a return to Spain’s glorious past (the Middle Ages, the Golden Century and the Counter Reform) is clearly claimed in order to rescue the country from the ills of modernity. It is with these different historical conceptions in mind that we compare the esthetics specificities of the artworks, the identity and historical references and the mediums used to legitimize the power and the political actions of each front.

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The magnetocaloric effect that originates from the martensitic transition in the ferromagnetic Ni-Mn-Ga shape-memory alloy is studied. We show that this effect is controlled by the magnetostructural coupling at both the martensitic variant and magnetic domain length scales. A large entropy change induced by moderate magnetic fields is obtained for alloys in which the magnetic moment of the two structural phases is not very different. We also show that this entropy change is not associated with the entropy difference between the martensitic and the parent phase arising from the change in the crystallographic structure which has been found to be independent of the magnetic field within this range of fields.

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Recent magnetotransport experiments of holes in InGaAs quantum dots [D. Reuter, P. Kailuweit, A. D. Wieck, U. Zeitler, O. Wibbelhoff, C. Meier, A. Lorke, and J. C. Maan, Phys. Rev. Lett. 94, 026808 (2005)] are interpreted by employing a multiband k¿p Hamiltonian, which considers the interaction between heavy hole and light hole subbands explicitly. No need of invoking an incomplete energy shell filling is required within this model. The crucial role we ascribe to the heavy hole-light hole interaction is further supported by one-band local-spin-density functional calculations, which show that Coulomb interactions do not induce any incomplete hole shell filling and therefore cannot account for the experimental magnetic field dispersion.

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The ground state structure of few-electron concentric double quantum rings is investigated within the local spin density approximation. Signatures of inter-ring coupling in the addition energy spectrum are identified and discussed. We show that the electronic configurations in these structures can be greatly modulated by the inter-ring distance: At short and long distances the low-lying electron states localize in the inner and outer rings, respectively, and the energy structure is essentially that of an isolated single quantum ring. However, at intermediate distances the electron states localized in the inner and the outer ring become quasidegenerate and a rather entangled, strongly-correlated system is formed.

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Within local-spin-density functional theory, we have investigated the ¿dissociation¿ of few-electron circular vertical semiconductor double quantum ring artificial molecules at zero magnetic field as a function of interring distance. In a first step, the molecules are constituted by two identical quantum rings. When the rings are quantum mechanically strongly coupled, the electronic states are substantially delocalized, and the addition energy spectra of the artificial molecule resemble those of a single quantum ring in the few-electron limit. When the rings are quantum mechanically weakly coupled, the electronic states in the molecule are substantially localized in one ring or the other, although the rings can be electrostatically coupled. The effect of a slight mismatch introduced in the molecules from nominally identical quantum wells, or from changes in the inner radius of the constituent rings, induces localization by offsetting the energy levels in the quantum rings. This plays a crucial role in the appearance of the addition spectra as a function of coupling strength particularly in the weak coupling limit.

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The role of effective mass and dielectric mismatches on chemical potentials and addition energies of many-electron multishell quantum dots (QDs) is explored within the framework of a recent extension of the spin density functional theory. It is shown that although the gross electronic density is located in the wells of these multishell QDs, taking position-dependent effective mass and dielectric constant into account can lead to the appearance of relevant differences in chemical potential and addition energies as compared to standard calculations in which the effective mass and the dielectric constant of the well is assumed for the whole multishell structure.