Author:
Bagrov Andrey A.,Danilov Mikhail,Brener Sergey,Harland Malte,Lichtenstein Alexander I.,Katsnelson Mikhail I.
Abstract
AbstractA considerable success in phenomenological description of $$\text {high-T}_{\text{c}}$$
high-T
c
superconductors has been achieved within the paradigm of Quantum Critical Point (QCP)—a parental state of a variety of exotic phases that is characterized by dense entanglement and absence of well-defined quasiparticles. However, the microscopic origin of the critical regime in real materials remains an open question. On the other hand, there is a popular view that a single-band t-$$t'$$
t
′
Hubbard model is the minimal model to catch the main relevant physics of superconducting compounds. Here, we suggest that emergence of the QCP is tightly connected with entanglement in real space and identify its location on the phase diagram of the hole-doped t-$$t'$$
t
′
Hubbard model. To detect the QCP we study a weighted graph of inter-site quantum mutual information within a four-by-four plaquette that is solved by exact diagonalization. We demonstrate that some quantitative characteristics of such a graph, viewed as a complex network, exhibit peculiar behavior around a certain submanifold in the parametric space of the model. This method allows us to overcome difficulties caused by finite size effects and to identify precursors of the transition point even on a small lattice, where long-range asymptotics of correlation functions cannot be accessed.
Funder
Russian Science Foundation
Knut och Alice Wallenbergs Stiftelse
Deutsche Forschungsgemeinschaft
European Research Council
Uppsala University
Publisher
Springer Science and Business Media LLC
Cited by
12 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
1. The small-world effect for interferometer networks;Journal of Physics: Complexity;2024-05-28
2. Complex quantum networks: a topical review;Journal of Physics A: Mathematical and Theoretical;2024-05-24
3. Network science: Ising states of matter;Physical Review E;2024-05-06
4. Network structure and dynamics of effective models of nonequilibrium quantum transport;Physical Review Research;2023-05-26
5. Emergent entanglement structures and self-similarity in quantum spin chains;Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences;2022-05-23