Frustrated S = 1/2 Chains in One-Dimensional Correlated Metal Ti4MnBi2

Fuente: arXiv
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Autores principales: Li, X. Y., Nocera, A., Foyevtsova, K., Sawatzky, G. A., Oudah, M., Murai, N., Kofu, M., Matsuura, M., Tamatsukuri, H., Aronson, M. C.
Formato: Preprint
Publicado: 2024
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author Li, X. Y.
Nocera, A.
Foyevtsova, K.
Sawatzky, G. A.
Oudah, M.
Murai, N.
Kofu, M.
Matsuura, M.
Tamatsukuri, H.
Aronson, M. C.
author_facet Li, X. Y.
Nocera, A.
Foyevtsova, K.
Sawatzky, G. A.
Oudah, M.
Murai, N.
Kofu, M.
Matsuura, M.
Tamatsukuri, H.
Aronson, M. C.
contents Electronic correlations lead to heavy quasiparticles in three-dimensional (3D) metals, and their collapse can destabilize magnetic moments. It is an open question whether there is an analogous instability in one-dimensional (1D) systems, unanswered due to the lack of metallic spin chain materials. We report neutron scattering measurements and Density Matrix Renormalization Group calculations establishing spinons in the correlated metal Ti4MnBi2, confirming that its magnetism is 1D. Ti4MnBi2 is inherently frustrated, forming near a quantum critical point (QCP) separating different temperature T = 0 phases of the J1-J2 XXZ model. 1D magnetism dominates to the lowest T, and is barely affected by weak interchain coupling. Ti4MnBi2 is the first metallic spin chain where 3D conduction electrons become strongly correlated due to their coupling to 1D magnetic moments.
format Preprint
id arxiv_https___arxiv_org_abs_2409_02880
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Frustrated S = 1/2 Chains in One-Dimensional Correlated Metal Ti4MnBi2
Li, X. Y.
Nocera, A.
Foyevtsova, K.
Sawatzky, G. A.
Oudah, M.
Murai, N.
Kofu, M.
Matsuura, M.
Tamatsukuri, H.
Aronson, M. C.
Strongly Correlated Electrons
Materials Science
Electronic correlations lead to heavy quasiparticles in three-dimensional (3D) metals, and their collapse can destabilize magnetic moments. It is an open question whether there is an analogous instability in one-dimensional (1D) systems, unanswered due to the lack of metallic spin chain materials. We report neutron scattering measurements and Density Matrix Renormalization Group calculations establishing spinons in the correlated metal Ti4MnBi2, confirming that its magnetism is 1D. Ti4MnBi2 is inherently frustrated, forming near a quantum critical point (QCP) separating different temperature T = 0 phases of the J1-J2 XXZ model. 1D magnetism dominates to the lowest T, and is barely affected by weak interchain coupling. Ti4MnBi2 is the first metallic spin chain where 3D conduction electrons become strongly correlated due to their coupling to 1D magnetic moments.
title Frustrated S = 1/2 Chains in One-Dimensional Correlated Metal Ti4MnBi2
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2409.02880