Composition-dependent bulk properties of intercalated transition metal dichalcogenides $Co_{1/3(1\pmδ)}NbS_{2}$

Fuente: arXiv
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Main Authors: Cho, Woonghee, Nam, Kiwan, An, Yeochan, Kim, You Young, Jung, Myung-Hwa, Kim, Kee Hoon, Park, Je-Geun
Format: Preprint
Published: 2026
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author Cho, Woonghee
Nam, Kiwan
An, Yeochan
Kim, You Young
Jung, Myung-Hwa
Kim, Kee Hoon
Park, Je-Geun
author_facet Cho, Woonghee
Nam, Kiwan
An, Yeochan
Kim, You Young
Jung, Myung-Hwa
Kim, Kee Hoon
Park, Je-Geun
contents We report a systematic study of the composition-dependent bulk properties in $Co_{1/3(1\pmδ)}NbS_{2}$ single crystals across a series of precisely controlled cobalt compositions with -4%<$δ$<8%. By tuning the cobalt stoichiometry, we find that the topological Hall effect is critically sensitive to the intercalant cobalt composition and is completely suppressed when the cobalt composition exceeds $δ$=+4%. We observe that the longitudinal conductivity is also strongly influenced by the cobalt composition, reaching its maximum value just before the disappearance of the topological Hall effect. Furthermore, heat capacity measurements reveal distinct Sommerfeld coefficients ($γ$) across different compositions, which exhibit a clear linear scaling with the inverse of the ordinary Hall coefficient ($R_H^{-1}$). These results demonstrate that composition tuning in $Co_{1/3(1\pmδ)}NbS_{2}$ systematically modifies the low-energy electronic degree of freedom, moving beyond a simple dilute impurity picture. Finally, we use the microscopic spin Hamiltonian to explain the stability of experimentally observed M-point modulation vector and the corresponding triple-Q magnetic order. Our findings highlight that the topological properties of this system are highly tunable through precise control of the intercalant concentration, offering a new perspective on the competition between electronic and magnetic orders in intercalated transition-metal dichalcogenides.
format Preprint
id arxiv_https___arxiv_org_abs_2603_26069
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Composition-dependent bulk properties of intercalated transition metal dichalcogenides $Co_{1/3(1\pmδ)}NbS_{2}$
Cho, Woonghee
Nam, Kiwan
An, Yeochan
Kim, You Young
Jung, Myung-Hwa
Kim, Kee Hoon
Park, Je-Geun
Materials Science
We report a systematic study of the composition-dependent bulk properties in $Co_{1/3(1\pmδ)}NbS_{2}$ single crystals across a series of precisely controlled cobalt compositions with -4%<$δ$<8%. By tuning the cobalt stoichiometry, we find that the topological Hall effect is critically sensitive to the intercalant cobalt composition and is completely suppressed when the cobalt composition exceeds $δ$=+4%. We observe that the longitudinal conductivity is also strongly influenced by the cobalt composition, reaching its maximum value just before the disappearance of the topological Hall effect. Furthermore, heat capacity measurements reveal distinct Sommerfeld coefficients ($γ$) across different compositions, which exhibit a clear linear scaling with the inverse of the ordinary Hall coefficient ($R_H^{-1}$). These results demonstrate that composition tuning in $Co_{1/3(1\pmδ)}NbS_{2}$ systematically modifies the low-energy electronic degree of freedom, moving beyond a simple dilute impurity picture. Finally, we use the microscopic spin Hamiltonian to explain the stability of experimentally observed M-point modulation vector and the corresponding triple-Q magnetic order. Our findings highlight that the topological properties of this system are highly tunable through precise control of the intercalant concentration, offering a new perspective on the competition between electronic and magnetic orders in intercalated transition-metal dichalcogenides.
title Composition-dependent bulk properties of intercalated transition metal dichalcogenides $Co_{1/3(1\pmδ)}NbS_{2}$
topic Materials Science
url https://arxiv.org/abs/2603.26069