High-resolution neutron diffraction determination of noncollinear antiferromagnetic order in the honeycomb magnetoelectric Fe$_{4}$Nb$_{2}$O$_{9}$

Fuente: arXiv
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Main Authors: Datta, Raktim, Kumar, Kapil, Oh, Dong Gun, Kim, Dongwook, Goel, Rahul, Lee, Nara, Go, Ara, Choi, Young Jai, Kiryukhin, Valery, Choi, Sungkyun
Format: Preprint
Published: 2026
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author Datta, Raktim
Kumar, Kapil
Oh, Dong Gun
Kim, Dongwook
Goel, Rahul
Lee, Nara
Go, Ara
Choi, Young Jai
Kiryukhin, Valery
Choi, Sungkyun
author_facet Datta, Raktim
Kumar, Kapil
Oh, Dong Gun
Kim, Dongwook
Goel, Rahul
Lee, Nara
Go, Ara
Choi, Young Jai
Kiryukhin, Valery
Choi, Sungkyun
contents Magnetoelectric systems offer potential for device applications exploiting coupled states between electric and magnetic properties. Among magnetoelectric materials, \FNO has attracted special attention because of its pronounced dielectric signal at high magnetic transition temperatures. However, the magnetic ground state, which is essential information for understanding its unusual magnetoelectricity, remains unclarified. Here, we report a noncollinear magnetic ground state of Fe$_{4}$Nb$_{2}$O$_{9}$. To examine the magnetoelectric effect associated with sequential magnetic and structural transitions upon cooling, we conducted combined x-ray diffraction, magnetic susceptibility, magnetization, dielectric constant, and magnetodielectric experiments. Powder neutron diffraction experiments revealed a series of magnetic Bragg peaks and clear splitting of peaks via structural transition. Magnetic Rietveld refinements, combined with group theory analysis, determined a noncollinear antiferromagnetic structure including a significant $c$-axis moment component at 1.5 K. This study provides insights into the understanding of its magnetoelectric properties.
format Preprint
id arxiv_https___arxiv_org_abs_2601_16215
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle High-resolution neutron diffraction determination of noncollinear antiferromagnetic order in the honeycomb magnetoelectric Fe$_{4}$Nb$_{2}$O$_{9}$
Datta, Raktim
Kumar, Kapil
Oh, Dong Gun
Kim, Dongwook
Goel, Rahul
Lee, Nara
Go, Ara
Choi, Young Jai
Kiryukhin, Valery
Choi, Sungkyun
Materials Science
Strongly Correlated Electrons
Magnetoelectric systems offer potential for device applications exploiting coupled states between electric and magnetic properties. Among magnetoelectric materials, \FNO has attracted special attention because of its pronounced dielectric signal at high magnetic transition temperatures. However, the magnetic ground state, which is essential information for understanding its unusual magnetoelectricity, remains unclarified. Here, we report a noncollinear magnetic ground state of Fe$_{4}$Nb$_{2}$O$_{9}$. To examine the magnetoelectric effect associated with sequential magnetic and structural transitions upon cooling, we conducted combined x-ray diffraction, magnetic susceptibility, magnetization, dielectric constant, and magnetodielectric experiments. Powder neutron diffraction experiments revealed a series of magnetic Bragg peaks and clear splitting of peaks via structural transition. Magnetic Rietveld refinements, combined with group theory analysis, determined a noncollinear antiferromagnetic structure including a significant $c$-axis moment component at 1.5 K. This study provides insights into the understanding of its magnetoelectric properties.
title High-resolution neutron diffraction determination of noncollinear antiferromagnetic order in the honeycomb magnetoelectric Fe$_{4}$Nb$_{2}$O$_{9}$
topic Materials Science
Strongly Correlated Electrons
url https://arxiv.org/abs/2601.16215