| Literature DB >> 33097668 |
Allen Scheie1,2,3, Jonas Kindervater4,2, Shu Zhang4,2,5, Hitesh J Changlani6,7, Gabriele Sala3, Georg Ehlers8, Andre Heinemann9, Gregory S Tucker10,11, Seyed M Koohpayeh4,2, Collin Broholm4,2,12,13.
Abstract
We use neutron scattering to show that ferromagnetism and antiferromagnetism coexist in the low T state of the pyrochlore quantum magnet [Formula: see text] While magnetic Bragg peaks evidence long-range static ferromagnetic order, inelastic scattering shows that short-range correlated antiferromagnetism is also present. Small-angle neutron scattering provides direct evidence for mesoscale magnetic structure that we associate with metastable antiferromagnetism. Classical Monte Carlo simulations based on exchange interactions inferred from [Formula: see text]-oriented high-field spin wave measurements confirm that antiferromagnetism is metastable within the otherwise ferromagnetic ground state. The apparent lack of coherent spin wave excitations and strong sensitivity to quenched disorder characterizing [Formula: see text] is a consequence of this multiphase magnetism.Entities:
Keywords: frustrated magnetism; neutron scattering; phase transitions; pyrochlore
Year: 2020 PMID: 33097668 PMCID: PMC7959578 DOI: 10.1073/pnas.2008791117
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205