Emergence of disconnected clusters in heterogeneous complex systems.

Sci Rep

Wigner Research Centre for Physics, Institute for Solid State Physics and Optics, Budapest, 1121, Hungary.

Published: December 2020

AI Article Synopsis

  • Percolation theory usually describes complex systems as being composed of closely linked clusters, but this research reveals that highly correlated areas can actually be distant from each other.
  • The study uses numerical simulations and advanced techniques to demonstrate this phenomenon in the context of infection spreading in disordered systems and shows that critical dynamics can emerge from these disconnected regions.
  • The findings also apply to quantum systems, suggesting that even in critical states, interactions occur between correlated sites that are not physically interconnected, leading to unique magnetic behaviors.

Article Abstract

Percolation theory dictates an intuitive picture depicting correlated regions in complex systems as densely connected clusters. While this picture might be adequate at small scales and apart from criticality, we show that highly correlated sites in complex systems can be inherently disconnected. This finding indicates a counter-intuitive organization of dynamical correlations, where functional similarity decouples from physical connectivity. We illustrate the phenomenon on the example of the disordered contact process (DCP) of infection spreading in heterogeneous systems. We apply numerical simulations and an asymptotically exact renormalization group technique (SDRG) in 1, 2 and 3 dimensional systems as well as in two-dimensional lattices with long-ranged interactions. We conclude that the critical dynamics is well captured by mostly one, highly correlated, but spatially disconnected cluster. Our findings indicate that at criticality the relevant, simultaneously infected sites typically do not directly interact with each other. Due to the similarity of the SDRG equations, our results hold also for the critical behavior of the disordered quantum Ising model, leading to quantum correlated, yet spatially disconnected, magnetic domains.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7736854PMC
http://dx.doi.org/10.1038/s41598-020-78769-2DOI Listing

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