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Itinerant quantum critical point with fermion pockets and hotspots

Metallic quantum criticality is among the central themes in the understanding of correlated electronic systems, and converging results between analytical and numerical approaches are still under review. In this work, we develop a state-of-the-art large-scale quantum Monte Carlo simulation technique...

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Autores principales: Liu, Zi Hong, Pan, Gaopei, Xu, Xiao Yan, Sun, Kai, Meng, Zi Yang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6708333/
https://www.ncbi.nlm.nih.gov/pubmed/31371512
http://dx.doi.org/10.1073/pnas.1901751116
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author Liu, Zi Hong
Pan, Gaopei
Xu, Xiao Yan
Sun, Kai
Meng, Zi Yang
author_facet Liu, Zi Hong
Pan, Gaopei
Xu, Xiao Yan
Sun, Kai
Meng, Zi Yang
author_sort Liu, Zi Hong
collection PubMed
description Metallic quantum criticality is among the central themes in the understanding of correlated electronic systems, and converging results between analytical and numerical approaches are still under review. In this work, we develop a state-of-the-art large-scale quantum Monte Carlo simulation technique and systematically investigate the itinerant quantum critical point on a 2D square lattice with antiferromagnetic spin fluctuations at wavevector [Formula: see text] —a problem that resembles the Fermi surface setup and low-energy antiferromagnetic fluctuations in high-Tc cuprates and other critical metals, which might be relevant to their non–Fermi-liquid behaviors. System sizes of [Formula: see text] ([Formula: see text]) are comfortably accessed, and the quantum critical scaling behaviors are revealed with unprecedented high precision. We found that the antiferromagnetic spin fluctuations introduce effective interactions among fermions and the fermions in return render the bare bosonic critical point into a different universality, different from both the bare Ising universality class and the Hertz–Mills–Moriya RPA prediction. At the quantum critical point, a finite anomalous dimension [Formula: see text] is observed in the bosonic propagator, and fermions at hotspots evolve into a non-Fermi liquid. In the antiferromagnetically ordered metallic phase, fermion pockets are observed as the energy gap opens up at the hotspots. These results bridge the recent theoretical and numerical developments in metallic quantum criticality and can serve as the stepping stone toward final understanding of the 2D correlated fermions interacting with gapless critical excitations.
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spelling pubmed-67083332019-09-06 Itinerant quantum critical point with fermion pockets and hotspots Liu, Zi Hong Pan, Gaopei Xu, Xiao Yan Sun, Kai Meng, Zi Yang Proc Natl Acad Sci U S A PNAS Plus Metallic quantum criticality is among the central themes in the understanding of correlated electronic systems, and converging results between analytical and numerical approaches are still under review. In this work, we develop a state-of-the-art large-scale quantum Monte Carlo simulation technique and systematically investigate the itinerant quantum critical point on a 2D square lattice with antiferromagnetic spin fluctuations at wavevector [Formula: see text] —a problem that resembles the Fermi surface setup and low-energy antiferromagnetic fluctuations in high-Tc cuprates and other critical metals, which might be relevant to their non–Fermi-liquid behaviors. System sizes of [Formula: see text] ([Formula: see text]) are comfortably accessed, and the quantum critical scaling behaviors are revealed with unprecedented high precision. We found that the antiferromagnetic spin fluctuations introduce effective interactions among fermions and the fermions in return render the bare bosonic critical point into a different universality, different from both the bare Ising universality class and the Hertz–Mills–Moriya RPA prediction. At the quantum critical point, a finite anomalous dimension [Formula: see text] is observed in the bosonic propagator, and fermions at hotspots evolve into a non-Fermi liquid. In the antiferromagnetically ordered metallic phase, fermion pockets are observed as the energy gap opens up at the hotspots. These results bridge the recent theoretical and numerical developments in metallic quantum criticality and can serve as the stepping stone toward final understanding of the 2D correlated fermions interacting with gapless critical excitations. National Academy of Sciences 2019-08-20 2019-08-01 /pmc/articles/PMC6708333/ /pubmed/31371512 http://dx.doi.org/10.1073/pnas.1901751116 Text en Copyright © 2019 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle PNAS Plus
Liu, Zi Hong
Pan, Gaopei
Xu, Xiao Yan
Sun, Kai
Meng, Zi Yang
Itinerant quantum critical point with fermion pockets and hotspots
title Itinerant quantum critical point with fermion pockets and hotspots
title_full Itinerant quantum critical point with fermion pockets and hotspots
title_fullStr Itinerant quantum critical point with fermion pockets and hotspots
title_full_unstemmed Itinerant quantum critical point with fermion pockets and hotspots
title_short Itinerant quantum critical point with fermion pockets and hotspots
title_sort itinerant quantum critical point with fermion pockets and hotspots
topic PNAS Plus
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6708333/
https://www.ncbi.nlm.nih.gov/pubmed/31371512
http://dx.doi.org/10.1073/pnas.1901751116
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