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arXiv · cond-mat/0010137

On the Nature of the Phase Transition Triggered by Vortex-Like Deffects in the 2D Ginzburg-Landau Model

Abstract

The two dimensional lattice Ginzburg-Landau hamiltonian is simulated numerically for different values of the coherence length $ξ$ in units of the lattice spacing $a$, a parameter which controls amplitude fluctuations. The phase diagram on the plane $T-ξ$ is measured. Amplitude fluctuations change dramatically the nature of the phase transition: for values of $ξ/a \simeq 1$, instead of the smooth Kosterlitz-Thouless transition there is a {\em first order} transition with a discontinuity in the vortex density $v$ and a sharper drop in the helicity modulus $Γ$. Both observables $v$ and $Γ$ are analyzed in detail at the crossover region between first and second order which occurs for intermediate values of $ξ/a$.

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BibTeXRIS

G. Alvarez, H. Fort. 2000-10-09. On the Nature of the Phase Transition Triggered by Vortex-Like Deffects in the 2D Ginzburg-Landau Model. https://doi.org/10.1016/s0375-9601(01)00210-9

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