From Interdependent Networks to Two-Interactions Physical Systems

Fuente: arXiv
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Main Authors: Sallem, Yuval, Yadid, Nahala, Wang, Xi, volotsenko, Irina, Gross, Bnaya, Kalisky, Beena, Havlin, Shlomo, Frydman, Aviad
Format: Preprint
Published: 2025
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author Sallem, Yuval
Yadid, Nahala
Wang, Xi
volotsenko, Irina
Gross, Bnaya
Kalisky, Beena
Havlin, Shlomo
Frydman, Aviad
author_facet Sallem, Yuval
Yadid, Nahala
Wang, Xi
volotsenko, Irina
Gross, Bnaya
Kalisky, Beena
Havlin, Shlomo
Frydman, Aviad
contents Recent advances have shown that introducing dependency interactions between two superconducting networks can trigger abrupt, hysteretic normal-superconductor phase transitions. In this study, we demonstrate that such behavior can also arise in a single-network superconducting system that features two distinct types of interactions: short-range electrical connectivity and long-range thermal dependency. Using experimental and simulation methods, we show that when sufficient heat is dissipated within a single-layer disordered superconducting network, the system undergoes a mixed-order phase transition marked by both a discontinuous change in resistance and critical scaling behavior. We find that the emergence and characteristics of these abrupt transitions depend critically on the thermal conductivity of the underlying substrate, establishing heat flow as the origin of the unique phase transition. Additionally, both experimental and numerical results reveal long-lived transient states and scaling dynamics near the critical point, consistent with spontaneous branching processes observed in interdependent networks theory. These findings strongly demonstrate that complex critical phenomena, such as mixed-order transitions, previously attributed to structurally interdependent systems, can also arise within single-layer physical systems when dual interactions coexist. Our results broaden the scope of the theory and experiments of phase transitions in interdependent networks and suggest new ways to design and control phase changes in physical, biological, and technological systems where two interactions are present.
format Preprint
id arxiv_https___arxiv_org_abs_2512_20130
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle From Interdependent Networks to Two-Interactions Physical Systems
Sallem, Yuval
Yadid, Nahala
Wang, Xi
volotsenko, Irina
Gross, Bnaya
Kalisky, Beena
Havlin, Shlomo
Frydman, Aviad
Superconductivity
Recent advances have shown that introducing dependency interactions between two superconducting networks can trigger abrupt, hysteretic normal-superconductor phase transitions. In this study, we demonstrate that such behavior can also arise in a single-network superconducting system that features two distinct types of interactions: short-range electrical connectivity and long-range thermal dependency. Using experimental and simulation methods, we show that when sufficient heat is dissipated within a single-layer disordered superconducting network, the system undergoes a mixed-order phase transition marked by both a discontinuous change in resistance and critical scaling behavior. We find that the emergence and characteristics of these abrupt transitions depend critically on the thermal conductivity of the underlying substrate, establishing heat flow as the origin of the unique phase transition. Additionally, both experimental and numerical results reveal long-lived transient states and scaling dynamics near the critical point, consistent with spontaneous branching processes observed in interdependent networks theory. These findings strongly demonstrate that complex critical phenomena, such as mixed-order transitions, previously attributed to structurally interdependent systems, can also arise within single-layer physical systems when dual interactions coexist. Our results broaden the scope of the theory and experiments of phase transitions in interdependent networks and suggest new ways to design and control phase changes in physical, biological, and technological systems where two interactions are present.
title From Interdependent Networks to Two-Interactions Physical Systems
topic Superconductivity
url https://arxiv.org/abs/2512.20130