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arXiv · 1403.2422

From classical to quantum criticality

Abstract

We study the crossover from classical to quantum phase transitions at zero temperature within the framework of $ϕ^4$ theory. The classical transition at zero temperature can be described by the Landau theory, turning into a quantum Ising transition with the addition of quantum fluctuations. We perform a calculation of the transition line in the regime where the quantum fluctuations are weak. The calculation is based on a renormalization group analysis of the crossover between classical and quantum transitions, and is well controlled even for space-time dimensionality $D$ below 4. In particular, for $D=2$ we obtain an analytic expression for the transition line which is valid for a wide range of parameters, as confirmed by numerical calculations based on the Density Matrix Renormalization Group. This behavior could be tested by measuring the phase diagram of the linear-zigzag instability in systems of trapped ions or repulsively-interacting dipoles.

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BibTeXRIS

Daniel Podolsky, Efrat Shimshoni, Pietro Silvi, Simone Montangero, Tommaso Calarco, Giovanna Morigi, Shmuel Fishman. 2014-03-10. From classical to quantum criticality. https://doi.org/10.1103/physrevb.89.214408

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