1-dimensional Ising model: Difference between revisions
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Consider a system with <math> N </math> spins in a row. The energy of the system will be given by | |||
Consider a system with <math> N </math> spins in a row. | |||
The energy of the system will be given by | |||
:<math> U = -J \sum_{i=1}^{N-1} S_{i} S_{i+1} </math>, | :<math> U = -J \sum_{i=1}^{N-1} S_{i} S_{i+1} </math>, | ||
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where each variable <math> S_j </math> can be either -1 or +1. | where each variable <math> S_j </math> can be either -1 or +1. | ||
The partition function of the system will be: | The [[partition function]] of the system will be: | ||
:<math> Q_N = \sum_{\Omega^N } \exp \left[ K \sum_{i=1}^{N-1} S_i S_{i+1} \right]</math>, | :<math> Q_N = \sum_{\Omega^N } \exp \left[ K \sum_{i=1}^{N-1} S_i S_{i+1} \right]</math>, | ||
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:<math> Q_N = 2^{N} \left( \cosh K \right)^{N-1} \approx ( 2 \cosh K )^N </math> | :<math> Q_N = 2^{N} \left( \cosh K \right)^{N-1} \approx ( 2 \cosh K )^N </math> | ||
The [[Helmholtz energy function]] in the thermodynamic limit will be | The [[Helmholtz energy function]] in the [[thermodynamic limit]] will be | ||
:<math> A = - N k_B T \log \left( 2 \cosh K \right) </math> | :<math> A = - N k_B T \log \left( 2 \cosh K \right) </math> | ||
==References== | |||
[[Category: Models]] | [[Category: Models]] |
Revision as of 12:08, 28 May 2007
Consider a system with spins in a row. The energy of the system will be given by
- ,
where each variable can be either -1 or +1.
The partition function of the system will be:
- ,
where represents the possible configuration of the N spins of the system,
and
Performing the sum of the possible values of we get:
Taking into account that
Therefore:
The Helmholtz energy function in the thermodynamic limit will be