Chemical tuning of a honeycomb magnet through a critical point

Fuente: arXiv
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Main Authors: Ferrenti, Austin M., Siegler, Maxime A., Ghosh, Shreenanda, Zhang, Xin, Kintop, Nina, Vivanco, Hector K., Lygouras, Chris, Halloran, Thomas, Klemenz, Sebastian, Broholm, Collin, Drichko, Natalia, McQueen, Tyrel M.
Format: Preprint
Published: 2022
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author Ferrenti, Austin M.
Siegler, Maxime A.
Ghosh, Shreenanda
Zhang, Xin
Kintop, Nina
Vivanco, Hector K.
Lygouras, Chris
Halloran, Thomas
Klemenz, Sebastian
Broholm, Collin
Drichko, Natalia
McQueen, Tyrel M.
author_facet Ferrenti, Austin M.
Siegler, Maxime A.
Ghosh, Shreenanda
Zhang, Xin
Kintop, Nina
Vivanco, Hector K.
Lygouras, Chris
Halloran, Thomas
Klemenz, Sebastian
Broholm, Collin
Drichko, Natalia
McQueen, Tyrel M.
contents BaCo2(AsO4)2 (BCAO) has seen extensive study since its initial identification as a proximate Kitaev quantum spin liquid candidate. Thought to be described by the highly anisotropic XXZ-J_1-J_3 model, the ease with which magnetic order is suppressed in the system indicates proximity to a spin liquid phase. Upon chemical tuning via partial arsenic substitution with vanadium, we show an initial suppression of long-range incommensurate order in the BCAO system to T = 3.0 K, followed by increased spin freezing at higher substitution levels. Between these two regions, at around 10% substitution, the system is shown to pass through a critical point where the competing J_1/J_3 exchange interactions become more balanced, producing a more complex magnetic ground state, likely stabilized by quantum fluctuations. This state shows how slight compositional change in magnetically-frustrated systems may be leveraged to tune ground state degeneracies and potentially realize a quantum spin liquid state.
format Preprint
id arxiv_https___arxiv_org_abs_2210_14439
institution arXiv
publishDate 2022
record_format arxiv
spellingShingle Chemical tuning of a honeycomb magnet through a critical point
Ferrenti, Austin M.
Siegler, Maxime A.
Ghosh, Shreenanda
Zhang, Xin
Kintop, Nina
Vivanco, Hector K.
Lygouras, Chris
Halloran, Thomas
Klemenz, Sebastian
Broholm, Collin
Drichko, Natalia
McQueen, Tyrel M.
Strongly Correlated Electrons
Materials Science
BaCo2(AsO4)2 (BCAO) has seen extensive study since its initial identification as a proximate Kitaev quantum spin liquid candidate. Thought to be described by the highly anisotropic XXZ-J_1-J_3 model, the ease with which magnetic order is suppressed in the system indicates proximity to a spin liquid phase. Upon chemical tuning via partial arsenic substitution with vanadium, we show an initial suppression of long-range incommensurate order in the BCAO system to T = 3.0 K, followed by increased spin freezing at higher substitution levels. Between these two regions, at around 10% substitution, the system is shown to pass through a critical point where the competing J_1/J_3 exchange interactions become more balanced, producing a more complex magnetic ground state, likely stabilized by quantum fluctuations. This state shows how slight compositional change in magnetically-frustrated systems may be leveraged to tune ground state degeneracies and potentially realize a quantum spin liquid state.
title Chemical tuning of a honeycomb magnet through a critical point
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2210.14439