Back to Search Start Over

Field-induced bound-state condensation and spin-nematic phase in SrCu$_2$(BO$_3$)$_2$ revealed by neutron scattering up to 25.9 T

Authors :
Fogh, Ellen
Nayak, Mithilesh
Prokhnenko, Oleksandr
Bartkowiak, Maciej
Munakata, Koji
Soh, Jian-Rui
Turrini, Alexandra A.
Zayed, Mohamed E.
Pomjakushina, Ekaterina
Kageyama, Hiroshi
Nojiri, Hiroyuki
Kakurai, Kazuhisa
Normand, Bruce
Mila, Frédéric
Rønnow, Henrik M.
Source :
Nature Communications 15, 442 (2024)
Publication Year :
2023

Abstract

Bose-Einstein condensation (BEC) underpins exotic forms of order ranging from superconductivity to superfluid 4 He. In quantum magnetic materials, ordered phases induced by an applied magnetic field can be described as the BEC of magnon excitations. With sufficiently strong magnetic frustration, exemplified by the system SrCu$_2$(BO$_3$)$_2$ , no clear magnon BEC is observed and the complex spectrum of multi-magnon bound states may allow a different type of condensation, but the high fields required to probe this physics have remained a barrier to detailed investigation. Here we exploit the first purpose-built high-field neutron scattering facility to measure the spin excitations of SrCu$_2$(BO$_3$)$_2$ up to 25.9 T and use cylinder matrix-product-states (MPS) calculations to reproduce the experimental spectra with high accuracy. Multiple unconventional features point to a condensation of $S = 2$ bound states into a spin-nematic phase, including the gradients of the one-magnon branches, the presence of many novel composite two- and three-triplon excitations and the persistence of a one-magnon spin gap. This gap reflects a direct analogy with superconductivity, suggesting that the spin-nematic phase in SrCu$_2$(BO$_3$)$_2$ is best understood as a condensate of bosonic Cooper pairs. Our results underline the wealth of unconventional states yet to be found in frustrated quantum magnetic materials under extreme conditions.

Details

Database :
arXiv
Journal :
Nature Communications 15, 442 (2024)
Publication Type :
Report
Accession number :
edsarx.2306.07389
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/s41467-023-44115-z