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Phase Transitions in single species Ising Models with Non-Reciprocal couplings

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arxiv 2411.03544 v1 pith:4PLP25J7 submitted 2024-11-05 cond-mat.stat-mech cond-mat.dis-nn

classification cond-mat.stat-mechcond-mat.dis-nn
keywords modelisingassociatedcontinuouscriticaldynamicdynamicsexponent
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abstract

We present a general framework for incorporating non-reciprocal interactions into the Ising model with Glauber dynamics, without requiring multiple species. We then focus on a model with vision-cone type interactions. We solve it in a fully connected network (mean-field) and perform extensive numerical simulations of the model in the square lattice. We find that the breakdown of the spin-flip symmetry introduced by non-reciprocity induces a discontinuous phase transition on top of the usual continuous one, that eventually occurs at higher critical temperatures. Combining a static and dynamic scaling analysis, we measure the critical exponents associated to the continuous symmetry breaking transition, and find them to be identical to the ones of the Ising model in two dimensions (2D), with the exception of the exponent $\beta$ associated to the order parameter. The latter appears to increase as the non-reciprocity of the coupling increases, suggesting that, within our numerical precision, the model does not belong to the 2D Ising model universality class. The coarsening process is anisotropic, but still follows the usual dynamic scaling with an exponent compatible with the standard value with non-conserved order parameter dynamics.

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  1. Non-reciprocal interactions preserve the universality class of Potts model

    cond-mat.stat-mech 2024-12 reject novelty 6.0 of 10

    Directed, non-reciprocal couplings in the q-state Potts model are claimed to leave equilibrium critical exponents unchanged, while selfish non-equilibrium dynamics yield varying exponents yet a super-universal Binder ...

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