7 resultados para METASTABILITY
em Consorci de Serveis Universitaris de Catalunya (CSUC), Spain
Resumo:
A general dynamical model for the first-order optical Fréedericksz transition incorporating spatial transverse inhomogeneities and hydrodynamic effects is discussed in the framework of a time-dependent Ginzburg-Landau model. The motion of an interface between two coexisting states with different director orientations is considered. A uniformly translating front solution of the dynamical equations for the motion of that interface is described.
Resumo:
X-ray photoemission electron microscopy combined with x-ray magnetic circular dichroism is used to study the magnetic properties of individual iron nanoparticles with sizes ranging from 20 down to 8 nm. While the magnetocrystalline anisotropy of bulk iron suggests superparamagnetic behavior in this size range, ferromagnetically blocked particles are also found at all sizes. Spontaneous transitions from the blocked state to the superparamagnetic state are observed in single particles and suggest that the enhanced magnetic energy barriers in the ferromagnetic particles are due to metastable, structurally excited states with unexpected life times
Resumo:
X-ray photoemission electron microscopy combined with x-ray magnetic circular dichroism is used to study the magnetic properties of individual iron nanoparticles with sizes ranging from 20 down to 8 nm. While the magnetocrystalline anisotropy of bulk iron suggests superparamagnetic behavior in this size range, ferromagnetically blocked particles are also found at all sizes. Spontaneous transitions from the blocked state to the superparamagnetic state are observed in single particles and suggest that the enhanced magnetic energy barriers in the ferromagnetic particles are due to metastable, structurally excited states with unexpected life times
Resumo:
Recientes investigaciones en el campo de los materiales cerámicos han dado cuenta de la importancia de la metaestabilidad para obtener estructuras con características singulares. Durante la consolidación del material las fases mestaestables se transforman en una estructura donde se produce la inhibición del crecimiento de grano. Este efecto es una consecuencia directa de la inmiscibilidad de dos fases en estado sólido. Los nanocomposites conseguidos, gracias a su pequeño tamaño de grano y a su estructura uniforme, exhiben unas interesantes propiedades como elevada dureza y tenacidad. Estas fases metaestables pueden ser producidas por diversas técnicas entre las que se encuentra la proyección térmica. En concreto en este trabajo se ha empleado la Proyección por plasma (APS). Las fases de partida inmiscibles, son fundidas y homogeneizadas durante su corta estancia en la zona caliente del plasma. Seguidamente, las partículas fundidas y aceleradas por el plasma, se someten a un enfriamiento rápido o temple (quenching) en un medio líquido, como el agua o en un substrato enfriado con nitrógeno líquido, formándose a través de este proceso las fases metaestables. El principal objetivo de este trabajo ha sido la obtención de polvos cerámicos metastables a través de la aplicación de APS y el establecimiento de un proceso de temple conducente a la formación de fases metastables así como la caracterización estructural de éstas. Como última etapa del trabajo se han estudiado los materiales nanoestructurados conseguidos tras realizar tratamientos térmicos.
Resumo:
Thermal analysis, powder diffraction, and Raman scattering as a function of the temperature were carried out on K2BeF4. Moreover, the crystal structure was determined at 293 K from powder diffraction. The compound shows a transition from Pna21 to Pnam space group at 921 K with a transition enthalpy of 5 kJ/mol. The transition is assumed to be first order because the compound shows metastability. Structurally and spectroscopically the transition is similar to those observed in (NH4)2SO4, which suggests that the low-temperature phase is ferroelectric. In order to confirm it, the spontaneous polarization has been computed using an ionic model.
Resumo:
Using Monte Carlo simulations we study the dynamics of three-dimensional Ising models with nearest-, next-nearest-, and four-spin (plaquette) interactions. During coarsening, such models develop growing energy barriers, which leads to very slow dynamics at low temperature. As already reported, the model with only the plaquette interaction exhibits some of the features characteristic of ordinary glasses: strong metastability of the supercooled liquid, a weak increase of the characteristic length under cooling, stretched-exponential relaxation, and aging. The addition of two-spin interactions, in general, destroys such behavior: the liquid phase loses metastability and the slow-dynamics regime terminates well below the melting transition, which is presumably related with a certain corner-rounding transition. However, for a particular choice of interaction constants, when the ground state is strongly degenerate, our simulations suggest that the slow-dynamics regime extends up to the melting transition. The analysis of these models leads us to the conjecture that in the four-spin Ising model domain walls lose their tension at the glassy transition and that they are basically tensionless in the glassy phase.
Resumo:
Thermal analysis, powder diffraction, and Raman scattering as a function of the temperature were carried out on K2BeF4. Moreover, the crystal structure was determined at 293 K from powder diffraction. The compound shows a transition from Pna21 to Pnam space group at 921 K with a transition enthalpy of 5 kJ/mol. The transition is assumed to be first order because the compound shows metastability. Structurally and spectroscopically the transition is similar to those observed in (NH4)2SO4, which suggests that the low-temperature phase is ferroelectric. In order to confirm it, the spontaneous polarization has been computed using an ionic model.