Evidence for Isostructural Magnetoelastic Coupling across the Magnetic Transition in Disordered NdSrCoFeO6–δ

Abstract Disordered double perovskites offer a rich interplay between chemical disorder, magnetic frustration, and lattice degrees of freedom, yet the role of the average crystal structure in mediating magnetic transitions remains poorly understood. Here, we report a magnetoelastic lattice-strain anomaly in the B-site-disordered double perovskite NdSrCoFeO6–δ, investigated by temperature-dependent high-resolution synchrotron X-ray diffraction and heat-capacity measurements. The average crystal structure remains orthorhombic Pnma from 300 to 10 K, with no symmetry-lowering structural transition. However, the lattice metrics display a clear anomaly in the temperature range of the ferromagnetic-like transition, marked by an inflection in the unit-cell volume and an anisotropic change in the thermal expansion behavior. The strongest response occurs along the orthorhombic b-axis, indicating that magnetic correlations are coupled to the octahedral-tilting degree of freedom rather than producing a crystallographic symmetry change. A volumetric strain analysis further reveals a contraction of the unit cell relative to a smooth high-temperature lattice baseline near the heat-capacity anomaly at TC ≈ 142 K. Notably, weaker lattice anomalies persist up to 235 K, within the previously reported Griffiths-like phase regime, suggesting that the lattice may sense magnetic heterogeneity before long-range order fully develops. These results demonstrate that the average lattice in NdSrCoFeO6–δ is not a passive host but an active component of the magnetic phase evolution, with implications for understanding magnetoelastic coupling in chemically disordered cobaltite-ferrite perovskites.

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Journal
ACS Applied Electronic Materials
Published
2026-09-24
DOI
https://doi.org/10.1021/acsaelm.6c01111
Primary Topic
Magnetic and transport properties of perovskites and related materials
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article
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Evidence for Isostructural Magnetoelastic Coupling across the Magnetic Transition in Disordered NdSrCoFeO6–δ

Nilson S. Ferreira, J. A. Alonso, João Elias F. S. Rodrigues, José Luis Martínez et al.
ACS Applied Electronic Materials
Magnetic and transport properties of perovskites and related materials
article

Evidence for Isostructural Magnetoelastic Coupling across the Magnetic Transition in Disordered NdSrCoFeO6–δ

Nilson S. Ferreira, J. A. Alonso, João Elias F. S. Rodrigues, José Luis Martínez, Romualdo Santos Silva Junior
article en

Abstract

Abstract Disordered double perovskites offer a rich interplay between chemical disorder, magnetic frustration, and lattice degrees of freedom, yet the role of the average crystal structure in mediating magnetic transitions remains poorly understood. Here, we report a magnetoelastic lattice-strain anomaly in the B-site-disordered double perovskite NdSrCoFeO6–δ, investigated by temperature-dependent high-resolution synchrotron X-ray diffraction and heat-capacity measurements. The average crystal structure remains orthorhombic Pnma from 300 to 10 K, with no symmetry-lowering structural transition. However, the lattice metrics display a clear anomaly in the temperature range of the ferromagnetic-like transition, marked by an inflection in the unit-cell volume and an anisotropic change in the thermal expansion behavior. The strongest response occurs along the orthorhombic b-axis, indicating that magnetic correlations are coupled to the octahedral-tilting degree of freedom rather than producing a crystallographic symmetry change. A volumetric strain analysis further reveals a contraction of the unit cell relative to a smooth high-temperature lattice baseline near the heat-capacity anomaly at TC ≈ 142 K. Notably, weaker lattice anomalies persist up to 235 K, within the previously reported Griffiths-like phase regime, suggesting that the lattice may sense magnetic heterogeneity before long-range order fully develops. These results demonstrate that the average lattice in NdSrCoFeO6–δ is not a passive host but an active component of the magnetic phase evolution, with implications for understanding magnetoelastic coupling in chemically disordered cobaltite-ferrite perovskites.

ACS Applied Electronic Materials
Universidade Federal de Sergipe (BR), European Synchrotron Radiation Facility (FR), Instituto de Ciencia de Materiales de Madrid (ES)
Peace, Justice and strong institutions
Openalex Percentile: Top 30%
Magnetic and transport properties of perovskites and related materials
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