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research article

Field-controlled multicritical behavior and emergent universality in fully frustrated quantum magnets

Fan, Yuchen
•
Xi, Ning
•
Liu, Changle
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March 9, 2024
Npj Quantum Materials

Phase transitions in condensed matter are a source of exotic emergent properties. We study the fully frustrated bilayer Heisenberg antiferromagnet to demonstrate that an applied magnetic field creates a previously unknown emergent criticality. The quantum phase diagram contains four states with distinctly different symmetries, all but one pair separated by first-order transitions. We show by quantum Monte Carlo simulations that the thermal phase diagram is dominated by a wall of discontinuities extending between the dimer-triplet phases and the singlet-containing phases. This wall is terminated at finite temperatures by a critical line, which becomes multicritical where the Berezinskii-Kosterlitz-Thouless (BKT) transition of the dimer-triplet antiferromagnet and the thermal Ising transition of the singlet-triplet crystal phase also terminate. The combination of merging symmetries leads to a 4-state Potts universality not contained in the microscopic Hamiltonian, which we interpret within the Ashkin-Teller model. Our results represent a systematic step in understanding emergent phenomena in quantum magnetic materials, including the "Shastry-Sutherland compound" SrCu2(BO3)2.

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Type
research article
DOI
10.1038/s41535-024-00636-4
Web of Science ID

WOS:001181573300001

Author(s)
Fan, Yuchen
Xi, Ning
Liu, Changle
Normand, Bruce  
Yu, Rong
Date Issued

2024-03-09

Publisher

Nature Portfolio

Published in
Npj Quantum Materials
Volume

9

Issue

1

Start page

25

Subjects

Technology

•

Physical Sciences

•

Long-Range Order

•

Critical-Point

•

Ground-State

•

Criticality

•

Model

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LQM  
FunderGrant Number

National Natural Science Foundation of China (National Science Foundation of China)

12334008

National Natural Science Foundation of China

Available on Infoscience
April 3, 2024
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/206901
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