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arXiv · 0709.4214

Destruction of first-order phase transition in a random-field Ising model

Abstract

The phase transitions that occur in an infinite-range-interaction Ising ferromagnet in the presence of a double-Gaussian random magnetic field are analyzed. Such random fields are defined as a superposition of two Gaussian distributions, presenting the same width $σ$. Is is argued that this distribution is more appropriate for a theoretical description of real systems than its simpler particular cases, i.e., the bimodal ($σ=0$) and the single Gaussian distributions. It is shown that a low-temperature first-order phase transition may be destructed for increasing values of $σ$, similarly to what happens in the compound $Fe_{x}Mg_{1-x}Cl_{2}$, whose finite-temperature first-order phase transition is presumably destructed by an increase in the field randomness.

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BibTeXRIS

N. Crokidakis, F. D. Nobre. 2007-12-07. Destruction of first-order phase transition in a random-field Ising model. https://doi.org/10.1088/0953-8984%2F20%2F14%2F145211

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