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Improved Bounds on the Phase Transition for the Hard-Core Model in 2-Dimensions (1306.0431v2)

Published 3 Jun 2013 in cs.DM, math-ph, math.MP, and math.PR

Abstract: For the hard-core lattice gas model defined on independent sets weighted by an activity $\lambda$, we study the critical activity $\lambda_c(\mathbb{Z}2)$ for the uniqueness/non-uniqueness threshold on the 2-dimensional integer lattice $\mathbb{Z}2$. The conjectured value of the critical activity is approximately $3.796$. Until recently, the best lower bound followed from algorithmic results of Weitz (2006). Weitz presented an FPTAS for approximating the partition function for graphs of constant maximum degree $\Delta$ when $\lambda<\lambda_c(\mathbb{T}\Delta)$ where $\mathbb{T}\Delta$ is the infinite, regular tree of degree $\Delta$. His result established a certain decay of correlations property called strong spatial mixing (SSM) on $\mathbb{Z}2$ by proving that SSM holds on its self-avoiding walk tree $T_{\mathrm{saw}}\sigma(\mathbb{Z}2)$ where $\sigma=(\sigma_v){v\in \mathbb{Z}2}$ and $\sigma_v$ is an ordering on the neighbors of vertex $v$. As a consequence he obtained that $\lambda_c(\mathbb{Z}2)\geq\lambda_c( \mathbb{T}_4) = 1.675$. Restrepo et al. (2011) improved Weitz's approach for the particular case of $\mathbb{Z}2$ and obtained that $\lambda_c(\mathbb{Z}2)>2.388$. In this paper, we establish an upper bound for this approach, by showing that, for all $\sigma$, SSM does not hold on $T{\mathrm{saw}}\sigma(\mathbb{Z}2)$ when $\lambda>3.4$. We also present a refinement of the approach of Restrepo et al. which improves the lower bound to $\lambda_c(\mathbb{Z}2)>2.48$.

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