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Bibliographic Details
Main Authors: Tumbleson, Z., Morley, S. A., Hollingworth, E., Singh, A., Bayaraa, T., Burdet, N. G., Saleheen, A. Us, McCarter, M. R., Raftrey, D., Pandolfi, R. J., Esposito, V., Dakovski, G. L., Decker, F. -J., Reid, A. H., Assefa, T. A., Fischer, P., Griffin, S. M., Kevan, S. D., Hellman, F., Turner, J. J., Roy, S.
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2404.13212
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author Tumbleson, Z.
Morley, S. A.
Hollingworth, E.
Singh, A.
Bayaraa, T.
Burdet, N. G.
Saleheen, A. Us
McCarter, M. R.
Raftrey, D.
Pandolfi, R. J.
Esposito, V.
Dakovski, G. L.
Decker, F. -J.
Reid, A. H.
Assefa, T. A.
Fischer, P.
Griffin, S. M.
Kevan, S. D.
Hellman, F.
Turner, J. J.
Roy, S.
author_facet Tumbleson, Z.
Morley, S. A.
Hollingworth, E.
Singh, A.
Bayaraa, T.
Burdet, N. G.
Saleheen, A. Us
McCarter, M. R.
Raftrey, D.
Pandolfi, R. J.
Esposito, V.
Dakovski, G. L.
Decker, F. -J.
Reid, A. H.
Assefa, T. A.
Fischer, P.
Griffin, S. M.
Kevan, S. D.
Hellman, F.
Turner, J. J.
Roy, S.
contents A system that possesses translational symmetry but breaks orientational symmetry is known as a nematic phase. While there are many examples of nematic phases in a wide range of contexts, such as in liquid crystals, complex oxides, and superconductors, of particular interest is the magnetic analogue, where the spin, charge, and orbital degrees of freedom of the electron are intertwined. The difficulty of spin nematics is the unambiguous realization and characterization of the phase. Here we present an entirely new type of magnetic nematic phase, which replaces the basis of individual spins with magnetic helices. The helical basis allows for the direct measurement of the order parameters with soft X-ray scattering and a thorough characterization of the nematic phase and its thermodynamic transitions. We discover two distinct nematic phases with unique spatio-temporal correlation signatures. Using coherent X-ray methods, we find that near the phase boundary between the two nematic phases, fluctuations coexist on the timescale of both seconds and sub-nanoseconds. Additionally, we have determined that the fluctuations occur simultaneously with a reorientation of the magnetic helices, indicating that there is spontaneous symmetry breaking and new degrees of freedom become available. Our results provide a novel framework for characterizing exotic phases and the phenomena presented can be mapped onto a broad class of physical systems.
format Preprint
id arxiv_https___arxiv_org_abs_2404_13212
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Nematicity of a Magnetic Helix
Tumbleson, Z.
Morley, S. A.
Hollingworth, E.
Singh, A.
Bayaraa, T.
Burdet, N. G.
Saleheen, A. Us
McCarter, M. R.
Raftrey, D.
Pandolfi, R. J.
Esposito, V.
Dakovski, G. L.
Decker, F. -J.
Reid, A. H.
Assefa, T. A.
Fischer, P.
Griffin, S. M.
Kevan, S. D.
Hellman, F.
Turner, J. J.
Roy, S.
Materials Science
A system that possesses translational symmetry but breaks orientational symmetry is known as a nematic phase. While there are many examples of nematic phases in a wide range of contexts, such as in liquid crystals, complex oxides, and superconductors, of particular interest is the magnetic analogue, where the spin, charge, and orbital degrees of freedom of the electron are intertwined. The difficulty of spin nematics is the unambiguous realization and characterization of the phase. Here we present an entirely new type of magnetic nematic phase, which replaces the basis of individual spins with magnetic helices. The helical basis allows for the direct measurement of the order parameters with soft X-ray scattering and a thorough characterization of the nematic phase and its thermodynamic transitions. We discover two distinct nematic phases with unique spatio-temporal correlation signatures. Using coherent X-ray methods, we find that near the phase boundary between the two nematic phases, fluctuations coexist on the timescale of both seconds and sub-nanoseconds. Additionally, we have determined that the fluctuations occur simultaneously with a reorientation of the magnetic helices, indicating that there is spontaneous symmetry breaking and new degrees of freedom become available. Our results provide a novel framework for characterizing exotic phases and the phenomena presented can be mapped onto a broad class of physical systems.
title Nematicity of a Magnetic Helix
topic Materials Science
url https://arxiv.org/abs/2404.13212