Long-range magnetic ordering and structural phase transition in disordered high-entropy spinel chromites

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Mandal, Sushanta, Chakraborty, Koushik, Isha, Yogi, Arvind Kumar, Kaushik, S. D., Marik, Sourav, Chakraborty, Tirthankar
Format: Preprint
Veröffentlicht: 2026
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866910223897198592
author Mandal, Sushanta
Chakraborty, Koushik
Isha
Yogi, Arvind Kumar
Kaushik, S. D.
Marik, Sourav
Chakraborty, Tirthankar
author_facet Mandal, Sushanta
Chakraborty, Koushik
Isha
Yogi, Arvind Kumar
Kaushik, S. D.
Marik, Sourav
Chakraborty, Tirthankar
contents High-entropy spinel oxides provide an excellent platform for investigating entropy-stabilized correlated systems with strong configurational disorder. In this work, we systematically study the temperature evolution of the structural and magnetic properties of Cr-based high-entropy spinels with compositions $(Mn_{0.2}Co_{0.2}Ni_{0.2}Cu_{0.2}Zn_{0.2})Cr_2O_4$ and $(Mg_{0.2}Co_{0.2}Ni_{0.2}Cu_{0.2}Zn_{0.2})Cr_2O_4$. Our results reveal that both systems crystallize in cubic structure with space group \textit{$Fd\overline{3}m$} at room temperature. Each system undergoes antiferromagnetic ordering below the Néel temperatures $ T_N$ = 49 K and 35 K, respectively. Neutron diffraction measurements confirm the emergence of long-range magnetic order with spiral spin arrangement. Both systems exhibit a structural phase transition from cubic \textit{$Fd\overline{3}m$} to orthorhombic \textit{Fddd} symmetry at approximately 55 K and 85 K, respectively. Notably, despite the significant chemical disorder at the A site, both systems undergo transitions analogous to those observed in low entropy spinel systems. This behavior suggests that high configurational entropy may promote global structural stabilization despite local chemical disorder, thereby preserving long-range orderings and the characteristic symmetry-breaking transitions of the pristine spinel systems.
format Preprint
id arxiv_https___arxiv_org_abs_2605_16106
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Long-range magnetic ordering and structural phase transition in disordered high-entropy spinel chromites
Mandal, Sushanta
Chakraborty, Koushik
Isha
Yogi, Arvind Kumar
Kaushik, S. D.
Marik, Sourav
Chakraborty, Tirthankar
Materials Science
High-entropy spinel oxides provide an excellent platform for investigating entropy-stabilized correlated systems with strong configurational disorder. In this work, we systematically study the temperature evolution of the structural and magnetic properties of Cr-based high-entropy spinels with compositions $(Mn_{0.2}Co_{0.2}Ni_{0.2}Cu_{0.2}Zn_{0.2})Cr_2O_4$ and $(Mg_{0.2}Co_{0.2}Ni_{0.2}Cu_{0.2}Zn_{0.2})Cr_2O_4$. Our results reveal that both systems crystallize in cubic structure with space group \textit{$Fd\overline{3}m$} at room temperature. Each system undergoes antiferromagnetic ordering below the Néel temperatures $ T_N$ = 49 K and 35 K, respectively. Neutron diffraction measurements confirm the emergence of long-range magnetic order with spiral spin arrangement. Both systems exhibit a structural phase transition from cubic \textit{$Fd\overline{3}m$} to orthorhombic \textit{Fddd} symmetry at approximately 55 K and 85 K, respectively. Notably, despite the significant chemical disorder at the A site, both systems undergo transitions analogous to those observed in low entropy spinel systems. This behavior suggests that high configurational entropy may promote global structural stabilization despite local chemical disorder, thereby preserving long-range orderings and the characteristic symmetry-breaking transitions of the pristine spinel systems.
title Long-range magnetic ordering and structural phase transition in disordered high-entropy spinel chromites
topic Materials Science
url https://arxiv.org/abs/2605.16106