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arXiv · 1303.4770

Zeros of the partition function and phase transition

Abstract

The equation of state of a system at equilibrium may be derived from the canonical or the grand canonical partition function. The former is a function of temperature T, while the latter also depends on the chemical potential μfor diffusive equilibrium. In the literature, often the variables β=(k_BT)^{-1} and fugacity z=exp(βμ) are used instead. For real βand z, the partition functions are always positive, being sums of positive terms. Following Lee, Yang and Fisher, we point out that valuable information about the system may be gleaned by examining the zeros of the grand partition function in the complex z plane (real β), or of the canonical partition function in the complex βplane. In case there is a phase transition, these zeros close in on the real axis in the thermodynamic limit. Examples are given from the van der Waal gas, and from the ideal Bose gas, where we show that even for a finite system with a small number of particles, the method is useful.

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BibTeXRIS

Wytse van Dijk, Calvin Lobo, Allison MacDonald, Rajat K. Bhaduri. 2013-03-19. Zeros of the partition function and phase transition. https://arxiv.org/abs/1303.4770

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