Long-range magnetic order in CePdAl$_3$ enabled by orthorhombic deformation

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Hauptverfasser: Stekiel, M., Čermák, P., Franz, C., Meven, M., Legut, D., Simeth, W., Hansen, U. B., Fåk, B., Weber, S., Schönmann, R., Kumar, V., Nemkovski, K., Deng, H., Bauer, A., Pfleiderer, C., Schneidewind, A.
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Veröffentlicht: 2024
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author Stekiel, M.
Čermák, P.
Franz, C.
Meven, M.
Legut, D.
Simeth, W.
Hansen, U. B.
Fåk, B.
Weber, S.
Schönmann, R.
Kumar, V.
Nemkovski, K.
Deng, H.
Bauer, A.
Pfleiderer, C.
Schneidewind, A.
author_facet Stekiel, M.
Čermák, P.
Franz, C.
Meven, M.
Legut, D.
Simeth, W.
Hansen, U. B.
Fåk, B.
Weber, S.
Schönmann, R.
Kumar, V.
Nemkovski, K.
Deng, H.
Bauer, A.
Pfleiderer, C.
Schneidewind, A.
contents We investigate the effect of structural deformation on the magnetic properties of orthorhombic CePdAl$_3$ in relation to its tetragonal polymorph. Utilizing x-ray and neutron diffraction we establish that the crystal structure has the $Cmcm$ space group symmetry and exhibits pseudo-tetragonal twinning. According to density-functional calculations the tetragonal-orthorhombic deformation mechanism has its grounds in relatively small free enthalpy difference between the polymorphs, allowing either phase to be quenched and fully accounts for the twinned microstructure of the orthorhombic phase. Neutron diffraction measurements show that orthorhombic CePdAl$_3$ establishes long-range magnetic order below $T_\mathrm{N}$=5.29 (5) K characterized by a collinear, antiferromagnetic arrangement of magnetic moments. Magnetic anisotropies of orthorhombic CePdAl$_3$ arise from strong spin-orbit coupling as evidenced by the crystal-field splitting of the $4f$ multiplet, fully characterised with neutron spectroscopy. We discuss the potential mechanism of frustration posed by antiferromagnetic interactions between nearest neighbours in the tetragonal phase, which hinders the formation of long-range magnetic order in tetragonal CePdAl$_3$. We propose that orthorhombic deformation releases the frustration and allows for long-range magnetic order.
format Preprint
id arxiv_https___arxiv_org_abs_2405_04318
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Long-range magnetic order in CePdAl$_3$ enabled by orthorhombic deformation
Stekiel, M.
Čermák, P.
Franz, C.
Meven, M.
Legut, D.
Simeth, W.
Hansen, U. B.
Fåk, B.
Weber, S.
Schönmann, R.
Kumar, V.
Nemkovski, K.
Deng, H.
Bauer, A.
Pfleiderer, C.
Schneidewind, A.
Strongly Correlated Electrons
Materials Science
We investigate the effect of structural deformation on the magnetic properties of orthorhombic CePdAl$_3$ in relation to its tetragonal polymorph. Utilizing x-ray and neutron diffraction we establish that the crystal structure has the $Cmcm$ space group symmetry and exhibits pseudo-tetragonal twinning. According to density-functional calculations the tetragonal-orthorhombic deformation mechanism has its grounds in relatively small free enthalpy difference between the polymorphs, allowing either phase to be quenched and fully accounts for the twinned microstructure of the orthorhombic phase. Neutron diffraction measurements show that orthorhombic CePdAl$_3$ establishes long-range magnetic order below $T_\mathrm{N}$=5.29 (5) K characterized by a collinear, antiferromagnetic arrangement of magnetic moments. Magnetic anisotropies of orthorhombic CePdAl$_3$ arise from strong spin-orbit coupling as evidenced by the crystal-field splitting of the $4f$ multiplet, fully characterised with neutron spectroscopy. We discuss the potential mechanism of frustration posed by antiferromagnetic interactions between nearest neighbours in the tetragonal phase, which hinders the formation of long-range magnetic order in tetragonal CePdAl$_3$. We propose that orthorhombic deformation releases the frustration and allows for long-range magnetic order.
title Long-range magnetic order in CePdAl$_3$ enabled by orthorhombic deformation
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2405.04318