Bulletin of the American Physical Society
2024 APS March Meeting
Monday–Friday, March 4–8, 2024; Minneapolis & Virtual
Session G28: Statistical Physics of Networks: Theory and Applications to Complex Systems II
11:30 AM–2:18 PM,
Tuesday, March 5, 2024
Room: 101I
Sponsoring
Units:
GSNP DSOFT DBIO
Chair: Fabrizio De Vico Fallani, Inria Paris Brain Institute
Abstract: G28.00004 : Network science Ising states of matter
12:30 PM–12:42 PM
Presenter:
Hanlin Sun
(NORDITA)
Authors:
Hanlin Sun
(NORDITA)
Marcello Dalmonte
(ICTP)
Ginestra Bianconi
(Queen Mary University London)
Rajat Kumar Panda
(ICTP)
Alex Rodriguez
(Universita degli Studi di Trieste)
Roberto Verdel
(ICTP)
Here we fill this gap by providing an in-depth statistical, combinatorial, geometrical and topological characterization of 2D Ising snapshot networks (IsingNets) extracted from Monte Carlo simulations of the 2D Ising model at different temperatures, going across the phase transition.
Our analysis reveals the complex organization properties of IsingNets in both the ferromagnetic and paramagnetic phases and demonstrates the significant deviations of the IsingNets with respect to randomized null models. In particular percolation properties of the IsingNets reflect the existence of the symmetry between configurations with opposite magnetization below the critical temperature and the very compact nature of the two emerging giant clusters revealed by our persistent homology analysis of the IsingNets. Moreover, the IsingNets display a very broad degree distribution and significant degree-degree correlations and weight-degree correlations demonstrating that they encode relevant information present in the configuration space of the 2D Ising model. The geometrical organization of the critical IsingNets is reflected in their spectral properties deviating from the one of the null model. Importantly, we identified several indicators of the phase transition.
This work reveals the important insights that network science can bring to the characterization of phases of matter. The set of tools described hereby can be applied as well to numerical and experimental data.
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