Replica method: Difference between revisions

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One can apply this trick to the <math>\log Z_1</math> we want to average, and replace the resulting power <math>(Z_1)^s</math> by <math>s</math> copies of the expression for <math>Z_1</math> ''(replicas)''. The result is equivalent to evaluate <math>\overline{A}_1</math> as
One can apply this trick to the <math>\log Z_1</math> we want to average, and replace the resulting power <math>(Z_1)^s</math> by <math>s</math> copies of the expression for <math>Z_1</math> ''(replicas)''. The result is equivalent to evaluate <math>\overline{A}_1</math> as


:<math> -\beta\overline{A}_1=\frac{Z^{\rm rep}(s)}{Z_0} </math>,
:<math> -\beta\overline{A}_1=\lim_{s\to 0}\frac{d}{ds}\left(\frac{Z^{\rm rep}(s)}{Z_0}\right) </math>,


where <math>Z^{\rm rep}(s)</math> is the partition function of a mixture with Hamiltonian
where <math>Z^{\rm rep}(s)</math> is the partition function of a mixture with Hamiltonian
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\left( H_{01}^\lambda (r^{N_1}_\lambda, q^{N_0}) +  H_{11}^\lambda (r^{N_1}_\lambda, q^{N_0})\right).</math>
\left( H_{01}^\lambda (r^{N_1}_\lambda, q^{N_0}) +  H_{11}^\lambda (r^{N_1}_\lambda, q^{N_0})\right).</math>


This Hamiltonian describes a completely equilibrated system of <math>s+1</math> components; the matrix and <math>s</math> identical non-interacting copies (''replicas'') of the fluid. Thus the relation between the [[Helmholtz energy function]] of the non-equilibrium partially frozen
This Hamiltonian describes a completely equilibrated system of <math>s+1</math> components; the matrix the <math>s</math> identical non-interacting replicas of the fluid. Since <math>Z_0=Z^{\rm rep}(0)</math>, then
and the replica (equilibrium) system is given by
 
:<math>\lim_{s\to 0}\frac{d}{ds}[-\beta A^{\rm rep}(s)]=\lim_{s\to 0}\frac{d}{ds}\log Z^{\rm rep}(s)=\lim_{s\to 0}\frac{\frac{d}{ds}Z^{\rm rep}(s)}{Z^{\rm rep}(s)}=\lim_{s\to 0}\frac{\frac{d}{ds}Z^{\rm rep}(s)}{Z_0}=-\beta\overline{A}_1.</math>
 
Thus the relation between the [[Helmholtz energy function]] of the non-equilibrium partially frozen system and the replicated (equilibrium) system is given by


:<math>- \beta \overline{A}_1 = \lim_{s \rightarrow 0} \frac{{\rm d}}{{\rm d}s} [- \beta A^{\rm rep} (s) ]
:<math>- \beta \overline{A}_1 = \lim_{s \rightarrow 0} \frac{{\rm d}}{{\rm d}s} [- \beta A^{\rm rep} (s) ]
</math>.
</math>.
==References==
==References==
#[http://dx.doi.org/10.1088/0305-4608/5/5/017 S F Edwards and P W Anderson  "Theory of spin glasses",Journal of Physics F: Metal Physics '''5''' pp.  965-974  (1975)]
#[http://dx.doi.org/10.1088/0305-4608/5/5/017 S F Edwards and P W Anderson  "Theory of spin glasses",Journal of Physics F: Metal Physics '''5''' pp.  965-974  (1975)]
#[http://dx.doi.org/10.1088/0305-4470/9/10/011 S F Edwards and R C Jones "The eigenvalue spectrum of a large symmetric random matrix", Journal of Physics A: Mathematical and General  '''9''' pp. 1595-1603 (1976)]
#[http://dx.doi.org/10.1088/0305-4470/9/10/011 S F Edwards and R C Jones "The eigenvalue spectrum of a large symmetric random matrix", Journal of Physics A: Mathematical and General  '''9''' pp. 1595-1603 (1976)]

Revision as of 17:02, 26 May 2007

The Helmholtz energy function of fluid in a matrix of configuration in the Canonical () ensemble is given by:

where is the fluid partition function, and , and are the pieces of the Hamiltonian corresponding to the fluid-fluid, fluid-matrix and matrix-matrix interactions. Assuming that the matrix is a configuration of a given fluid, with interaction hamiltonian , we can average over matrix configurations to obtain

(see Refs. 1 and 2)

An important mathematical trick to get rid of the logarithm inside of the integral is to use the mathematical identity
.

One can apply this trick to the we want to average, and replace the resulting power by copies of the expression for (replicas). The result is equivalent to evaluate as

,

where is the partition function of a mixture with Hamiltonian

This Hamiltonian describes a completely equilibrated system of components; the matrix the identical non-interacting replicas of the fluid. Since , then

Thus the relation between the Helmholtz energy function of the non-equilibrium partially frozen system and the replicated (equilibrium) system is given by

.

References

  1. S F Edwards and P W Anderson "Theory of spin glasses",Journal of Physics F: Metal Physics 5 pp. 965-974 (1975)
  2. S F Edwards and R C Jones "The eigenvalue spectrum of a large symmetric random matrix", Journal of Physics A: Mathematical and General 9 pp. 1595-1603 (1976)