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      Structural glass on a lattice in the limit of infinite dimensions

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          Abstract

          We construct a mean field theory for the lattice model of a structural glass and solve it using the replica method and one step replica symmetry breaking ansatz; this theory becomes exact in the limit of infinite dimensions. Analyzing stability of this solution we conclude that the metastable states remain uncorrelated in a finite temperature range below the transition, but become correlated at sufficiently low temperature. We find dynamic and thermodynamic transition temperatures as functions of the density and construct a full thermodynamic description of a typical physical process in which the system gets trapped in one metastable state when cooled below vitrification temperature. We find that for such physical process the entropy and pressure at the glass transition are continuous across the transition while their temperature derivatives have jumps.

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          Stability of the Sherrington-Kirkpatrick solution of a spin glass model

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            Analytical Solution of the Off-Equilibrium Dynamics of a Long Range Spin-Glass Model

            We study the non-equilibrium relaxation of the spherical spin-glass model with p-spin interactions in the \(N \rightarrow \infty\) limit. We analytically solve the asymptotics of the magnetization and the correlation and response functions for long but finite times. Even in the thermodynamic limit the system exhibits `weak' (as well as `true') ergodicity breaking and aging effects. We determine a functional Parisi-like order parameter \(P_d(q)\) which plays a similar role for the dynamics to that played by the usual function for the statics.
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              The simplest spin glass

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                Author and article information

                Journal
                04 July 2001
                Article
                10.1103/PhysRevB.66.174202
                cond-mat/0107093
                5dce151a-f231-4768-bb11-429803b20238
                History
                Custom metadata
                4 pages, 2 figures
                cond-mat.dis-nn

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