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Magnon interactions in a moderately correlated Mott insulator

  • Qisi Wang
  • , S. Mustafi
  • , E. Fogh
  • , N. Astrakhantsev
  • , Z. He
  • , I. Biało
  • , Ying Chan
  • , L. Martinelli
  • , M. Horio
  • , O. Ivashko
  • , N. E. Shaik
  • , K. von Arx
  • , Y. Sassa
  • , E. Paris
  • , M. H. Fischer
  • , Y. Tseng
  • , N. B. Christensen
  • , A. Galdi
  • , D. G. Schlom
  • , K. M. Shen
  • T. Schmitt, H. M. Rønnow, J. Chang
  • Chinese University of Hong Kong
  • Physik-Institut der Universität Zürich
  • École Polytechnique Fédérale de Lausanne (EPFL)
  • Institute of High Energy Physics Chinese Academy of Science
  • Spallation Neutron Source Science Center
  • Univ of Mining and Metallurgy
  • Center for Autonomous Systems
  • Paul Scherrer Institut
  • Technical University of Denmark
  • University of Salerno
  • Cornell University College of Engineering
  • Kavli Institute at Cornell for NanoScale Science
  • Cornell University

Research output: Contribution to journalArticlepeer-review

10 Scopus citations

Abstract

Quantum fluctuations in low-dimensional systems and near quantum phase transitions have significant influences on material properties. Yet, it is difficult to experimentally gauge the strength and importance of quantum fluctuations. Here we provide a resonant inelastic x-ray scattering study of magnon excitations in Mott insulating cuprates. From the thin film of SrCuO2, single- and bi-magnon dispersions are derived. Using an effective Heisenberg Hamiltonian generated from the Hubbard model, we show that the single-magnon dispersion is only described satisfactorily when including significant quantum corrections stemming from magnon-magnon interactions. Comparative results on La2CuO4 indicate that quantum fluctuations are much stronger in SrCuO2 suggesting closer proximity to a magnetic quantum critical point. Monte Carlo calculations reveal that other magnetic orders may compete with the antiferromagnetic Néel order as the ground state. Our results indicate that SrCuO2—due to strong quantum fluctuations—is a unique starting point for the exploration of novel magnetic ground states.

Original languageEnglish
Article number5348
JournalNature Communications
Volume15
Issue number1
DOIs
StatePublished - Dec 2024
Externally publishedYes

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