13,397 research outputs found

    Determining efficient temperature sets for the simulated tempering method

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    In statistical physics, the efficiency of tempering approaches strongly depends on ingredients such as the number of replicas RR, reliable determination of weight factors and the set of used temperatures, TR={T1,T2,,TR}{\mathcal T}_R = \{T_1, T_2, \ldots, T_R\}. For the simulated tempering (SP) in particular -- useful due to its generality and conceptual simplicity -- the latter aspect (closely related to the actual RR) may be a key issue in problems displaying metastability and trapping in certain regions of the phase space. To determine TR{\mathcal T}_R's leading to accurate thermodynamics estimates and still trying to minimize the simulation computational time, here it is considered a fixed exchange frequency scheme for the ST. From the temperature of interest T1T_1, successive TT's are chosen so that the exchange frequency between any adjacent pair TrT_r and Tr+1T_{r+1} has a same value ff. By varying the ff's and analyzing the TR{\mathcal T}_R's through relatively inexpensive tests (e.g., time decay toward the steady regime), an optimal situation in which the simulations visit much faster and more uniformly the relevant portions of the phase space is determined. As illustrations, the proposal is applied to three lattice models, BEG, Bell-Lavis, and Potts, in the hard case of extreme first-order phase transitions, always giving very good results, even for R=3R=3. Also, comparisons with other protocols (constant entropy and arithmetic progression) to choose the set TR{\mathcal T}_R are undertaken. The fixed exchange frequency method is found to be consistently superior, specially for small RR's. Finally, distinct instances where the prescription could be helpful (in second-order transitions and for the parallel tempering approach) are briefly discussed.Comment: 10 pages, 14 figure

    Influence of disordered porous media in the anomalous properties of a simple water model

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    The thermodynamic, dynamic and structural behavior of a water-like system confined in a matrix is analyzed for increasing confining geometries. The liquid is modeled by a two dimensional associating lattice gas model that exhibits density and diffusion anomalies, in similarity to the anomalies present in liquid water. The matrix is a triangular lattice in which fixed obstacles impose restrictions to the occupation of the particles. We show that obstacules shortens all lines, including the phase coexistence, the critical and the anomalous lines. The inclusion of a very dense matrix not only suppress the anomalies but also the liquid-liquid critical point
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