607 resultados para Propietats òptiques no lineals


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Els nous materials sintètics, els més revolucionaris, s"inspiraran en la natura, capaç de crear per ella mateixa estructures amb propietats úniques

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The Heusler alloy Ni50 Mn37 Sn13 was successfully produced as ribbon flakes of thickness around 7-10 μm melt spinning. Fracture cross section micrographs in the ribbon show the formation of a microcrystalline columnarlike microstructure, with their longer axes perpendicular to the ribbon plane. Phase transition temperatures of the martensite-austenite transformation were found to be MS =218 K, Mf =207 K, AS =224 K, and Af =232 K; the thermal hysteresis of the transformation is 15 K. Ferromagnetic L 21 bcc austenite phase shows a Curie point of 313 K, with cell parameter a=0.5971 (5) nm at 298 K, transforming into a modulated 7M orthorhombic martensite with a=0.6121 (7) nm, b=0.6058 (8) nm, and c=0.5660 (2) nm, at 150 K

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The most extensively studied Heusler alloys are those based on the Ni-Mn-Ga system. However, to overcome the high cost of Gallium and the usually low martensitic transformation temperature, the search for Ga-free alloys has been recently attempted, particularly, by introducing In, Sn or Sb. In this work, two alloys (Mn50Ni35.5In14.5 and Ni50Mn35In15) have been obtained by melt spinning. We outline their structural and thermal behaviour. Mn50Ni35.5In14.5 alloy has the transformation above room temperature whereas Ni50Mn35In15 does not have this transformation in the temperature range here analyzed

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El biochar, o biocarbó, és un material produït a partir de la piròlisi de biomassa, consistent en la descomposició tèrmica de la matèria orgànica a baixa o nul·la concentració d’oxigen. La seva definició més acceptada és la d’un material pirolitzat destinat a ser utilitzat en el sòl, quedant fora d’aquesta denominació materials produïts per a ser utilitzats com a combustible. La gran varietat de materials pirolitzables i de tecnologies de piròlisi determinen un ampli ventall de biochars amb propietats físiques, químiques i biològiques molt contrastades, i que determinen la seva idoneïtat o no per a ser utilitzat com a esmena orgànica, sent la biomassa de partida un dels factors més determinants. Els processos de piròlisis generen gasos inflamables, gasos condensables inflamables (bioolis) i biochar en proporcions variables segons el tipus de piròlisi. Aquests grans tipus principals de piròlisi per la producció de biochar són: Piròlisi lenta, Piròlisi ràpida, i Gasificació. El producte biochar, totalment en procés d’investigació, es creu que pot tenir grans beneficis ambientals en diferents àmbits: Biochar com a millora de la fertilitat, Biochar com a via de gestió de residus, Biochar per producció d’energia, i Biochar per la mitigació del canvi climàtic. Cal tenir en compte possibles riscos a l’hora d’aplicar biochar en sòls. Ja que el producte final varia segons el material de partida. En especial quan es genera biochar a partir de residus, ja siguin de depuradora, industrials o ramaders, degut que el seu contingut en contaminants pot ser perjudicial pel medi ambient i per la salut de les plantes. Els contaminats presents, sobretot metalls pesats i hidrocarburs aromàtics policíclics (PAH), són difícilment eliminats o es produeixen “de novo” durant el procés de piròlisi, respectivament, de manera que amb les aplicacions de biochar poden causar impactes negatius. En aquest projecte, es centre especial atenció en una única característica del sòl, com es la capacitat d’intercanvi catiònic (CIC). La CIC és la capacitat que té el sòl per retenir i alliberar ions amb càrrega positiva. Per les seves característiques, l’argila i la matèria orgànica són les que condicionen la CIC total d’un sòl, ja que aquestes contenen carregues negatives a la seva superfície. La CIC proporciona als sòls la capacitat de retenir nutrients, necessaris per el creixement de les plantes, per tant una major CIC incrementa la fertilitat dels sòls, així com permet reduir les pèrdues d’aquests nutrients per lixiviació i mitigar possible contaminació de les aigües. L’objectiu principal del projecte doncs, és estudiar el potencial ús d’un biochar de gasificació com esmena orgànica per a sòls agrícoles alcalins mediterranis, i més concretament el seu paper per a millora de la retenció de nutrients en relació al potencial augment de la capacitat d’intercanvi catiònic (CIC) del sòl 18 mesos després de la seva aplicació en parcel·les de camp. Les conclusions finals no han estat del tot satisfactòries, degut que no s’han trobat diferències en la CIC, havent de rebutjar la hipòtesi de partida. Tot i que hi ha diferents factors que poden ser la causa d’aquests resultats. Una possibilitat, probablement la que dona major explicació, és el poc temps transcorregut des de l’aplicació de biochar fins al moment de les anàlisis.

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El documento recoge los hitos del desarrollo de Pintoresco, una aplicación orientada a la evaluación de los procesos de aprendizaje conceptual que se examinan a partir de su uso por usuario ordinario. La aplicación permite obtener datos del proceso de aprendizaje conceptual en un contexto en que la estructura interna de las clases en que se produce una partición no depende de las propiedades específicas de los patrones de estímulo que son distintos para cada usuario sino de la forma lógica de la propia partición.

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The main goal of this paper is to obtain a granular material formulated with Municipal Solid Waste Incinerarion (MSWI) bottom ash (BA) and air pollution control (APC) ash to be used as secondary building material. Previously, an optimum concrete mixture using both MSWI residues as aggregates was formulated. A compromise between the environmental behaviour and the economy of the process was considered. Unconfined compressive strength and abrasion resistance values were measured in order to evaluate the mechanical properties. From these results, the granular mixture was not suited for certain applications owing to the high BA/APC content and low cement percentages used to reduce the costs of the final product. Nevertheless, the leaching test performed showed that the concentrations of all heavy metals were below the limits established by the current Catalan legislation for their reutilization. Therefore, the material studied might be mainly used in embankments, where high mechanical properties are not needed and environmental safety is assured.

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We report a phenomenon occurring in field-responsive suspensions: shear-induced anomalous stresses. Competition between a rotating field and a shear flow originates a multiplicity of anomalous stress behaviors in suspensions of bound dimers constituted by induced dipoles. The great variety of stress regimes includes nonmonotonic behaviors, multiresonances, negative viscosity effect, and blockades. The reversibility of the transitions between the different regimes and the self-similarity of the stresses make this phenomenon controllable and therefore applicable to modify macroscopic properties of soft condensed matter phases.

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We analyze the diffusion of a Brownian particle in a fluid under stationary flow. By using the scheme of nonequilibrium thermodynamics in phase space, we obtain the Fokker-Planck equation that is compared with others derived from the kinetic theory and projector operator techniques. This equation exhibits violation of the fluctuation-dissipation theorem. By implementing the hydrodynamic regime described by the first moments of the nonequilibrium distribution, we find relaxation equations for the diffusion current and pressure tensor, allowing us to arrive at a complete description of the system in the inertial and diffusion regimes. The simplicity and generality of the method we propose makes it applicable to more complex situations, often encountered in problems of soft-condensed matter, in which not only one but more degrees of freedom are coupled to a nonequilibrium bath.

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We use the mesoscopic nonequilibrium thermodynamics theory to derive the general kinetic equation of a system in the presence of potential barriers. The result is applied to a description of the evolution of systems whose dynamics is influenced by entropic barriers. We analyze in detail the case of diffusion in a domain of irregular geometry in which the presence of the boundaries induces an entropy barrier when approaching the exact dynamics by a coarsening of the description. The corresponding kinetic equation, named the Fick-Jacobs equation, is obtained, and its validity is generalized through the formulation of a scaling law for the diffusion coefficient which depends on the shape of the boundaries. The method we propose can be useful to analyze the dynamics of systems at the nanoscale where the presence of entropy barriers is a common feature.

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We study biased, diffusive transport of Brownian particles through narrow, spatially periodic structures in which the motion is constrained in lateral directions. The problem is analyzed under the perspective of the Fick-Jacobs equation, which accounts for the effect of the lateral confinement by introducing an entropic barrier in a one-dimensional diffusion. The validity of this approximation, based on the assumption of an instantaneous equilibration of the particle distribution in the cross section of the structure, is analyzed by comparing the different time scales that characterize the problem. A validity criterion is established in terms of the shape of the structure and of the applied force. It is analytically corroborated and verified by numerical simulations that the critical value of the force up to which this description holds true scales as the square of the periodicity of the structure. The criterion can be visualized by means of a diagram representing the regions where the Fick-Jacobs description becomes inaccurate in terms of the scaled force versus the periodicity of the structure.

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Radiative heat exchange at the nanoscale presents a challenge for several areas due to its scope and nature. Here, we provide a thermokinetic description of microscale radiative energy transfer including phonon-photon coupling manifested through a non-Debye relaxation behavior. We show that a lognormal-like distribution of modes of relaxation accounts for this non-Debye relaxation behavior leading to the thermal conductance. We also discuss the validity of the fluctuation-dissipation theorem. The general expression for the thermal conductance we obtain fits existing experimental results with remarkable accuracy. Accordingly, our approach offers an overall explanation of radiative energy transfer through micrometric gaps regardless of geometrical configurations and distances.

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We describe the effect of hydrodynamic interactions in the sedimentation of a pair of inextensible semiflexible filaments under a uniform constant force at low Reynolds numbers. We have analyzed the different regimes and the morphology of such polymers in simple geometries, which allow us to highlight the peculiarities of the interplay between elastic and hydrodynamic stresses. Cooperative and symmetry breaking effects associated to the geometry of the fibers gives rise to characteristic motion which give them distinct properties from rigid and elastic filaments.

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A consistent extension of local spin density approximation (LSDA) to account for mass and dielectric mismatches in nanocrystals is presented. The extension accounting for variable effective mass is exact. Illustrative comparisons with available configuration interaction calculations show that the approach is also very reliable when it comes to account for dielectric mismatches. The modified LSDA is as fast and computationally low demanding as LSDA. Therefore, it is a tool suitable to study large particle systems in inhomogeneous media without much effort.

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Solutions of the general cubic complex Ginzburg-Landau equation comprising multiple spiral waves are considered, and laws of motion for the centers are derived. The direction of the motion changes from along the line of centers to perpendicular to the line of centers as the separation increases, with the strength of the interaction algebraic at small separations and exponentially small at large separations. The corresponding asymptotic wave number and frequency are also determined, which evolve slowly as the spirals move

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We characterize the different morphological phases that occur in a simple one-dimensional model of propagation of innovations among economic agents [X. Guardiola et al., Phys. Rev E 66, 026121 (2002)]. We show that the model can be regarded as a nonequilibrium surface growth model. This allows us to demonstrate the presence of a continuous roughening transition between a flat (system size independent fluctuations) and a rough phase (system size dependent fluctuations). Finite-size scaling studies at the transition strongly suggest that the dynamic critical transition does not belong to directed percolation and, in fact, critical exponents do not seem to fit in any of the known universality classes of nonequilibrium phase transitions. Finally, we present an explanation for the occurrence of the roughening transition and argue that avalanche driven dynamics is responsible for the novel critical behavior.