Functional Renormalization Group approaches for Quantum Spin Liquids

ORAL  · Invited

Abstract

For decades, frustrated quantum magnets have been a seed for scientific progress and innovation in condensed matter. As much as the numerical tools for low-dimensional quantum magnetism have thrived and improved in recent years due to breakthroughs inspired by quantum information and quantum computation, higher-dimensional quantum magnetism can be considered as the final frontier, where strong quantum entanglement, multiple ordering channels, and manifold ways of paramagnetism culminate. At the same time, efforts in crystal synthesis have induced a significant increase in the number of tangible frustrated magnets which are generically three-dimensional in nature, creating an urgent need for quantitative theoretical modeling. This talk will present the state-of-the-art in pseudo-fermion (PF) and pseudo-Majorana (PM) functional renormalization group (FRG) and their specific ability to address higher-dimensional frustrated quantum magnetism. First developed more than a decade ago, the PFFRG interprets a Heisenberg model Hamiltonian in terms of Abrikosov pseudofermions, which is then treated in a diagrammatic resummation scheme formulated as a renormalization group flow of m-particle pseudofermion vertices. We will discuss the achievements of PFFRG in successfully predicting the spectroscopic signatures of candidate quantum spin liquid materials based on complex three-dimensional geometries with intricate Hamiltonians. These include the recently studied bi-trillium lattice S=1 K2Ni2(SO4)3 and the hyperhyperkagome lattice S=1/2 PbCuTe2O6 compounds. We also present the success of PMFRG in treating finite-temperature properties of three-dimensional systems by describing phase transitions and the associated critical exponents.

*Simons Foundation, ICTP Trieste, Aspen Center for Physics

Publication: (1) arXiv: 2308.11746 (2023), Dynamics of K2Ni2(SO4)3 governed by proximity to a 3D spin liquid model
(2) arXiv: 2307.10359 (2023), Pseudo-fermion functional renormalization group for spin models
(3) Phys. Rev. Lett. 127, 157204 (2021), Magnetic field induced quantum spin liquid in the two coupled trillium lattices of K2Ni2(SO4)3
(4) Nat. Commun. 11, 2348 (2020), Evidence for a three-dimensional quantum spin liquid in PbCuTe2O6
(5) SciPost Phys. 12, 156 (2022), Quantitative functional renormalization for three-dimensional quantum Heisenberg models

Presenters

  • Yasir Iqbal

    • Indian Institute of Technology Madras

Authors

  • Yasir Iqbal

    • Indian Institute of Technology Madras
  • Ronny Thomale

    • Julius-Maximilians University of Wuerzbu
    • Julius-Maximilians University of Wuerzburg
    • Julius-Maximilians University of Wuerzbug
    • Julius-Maximilians-University Wuerzburg
  • Johannes Reuther

    • Freie Universität Berlin and Helmholtz-Zentrum für Materialien und Energie Berlin
  • Henrik M Ronnow

    • Ecole Polytechnique Federale de Lausanne
    • EPFL
  • Ivica Živković

    • EPFL
    • École polytechnique fédérale de Lausanne
  • Harald O Jeschke

    • Okayama Univ
    • Okayama University
  • Simon Trebst

    • University of Cologne
  • Nils Niggemann

    • Freie Universität Berlin
  • Vincent Noculak

    • Freie Universität Berlin
  • Dominik Kiese

    • Center for Computational Quantum Physics, Flatiron Institute
    • Flatiron Institute, Simons Foundation
  • Tobias Müller

    • Julius Maximilians Universität Würzburg
  • Bella A Lake

    • Helmholtz Zentrum Berlin for Materialien und Energie
  • Björn Sbierski

    • Ludwig Maximilians Universität Munich