Staab, Franziska; Yang, Yangyiwei; Foya, Eren; Bruder, Enrico; Zingsem, Benjamin; Adabifiroozjaei, Esmaeil; Nasiou, Despoina; Skokov, Konstantin; Koch, David; Farle, Michael; Dunin-Borkowski, Rafal E.; Molina-Luna, Leopoldo; Gutfleisch, Oliver; Xu, Bai-Xiang; Durst, Karsten:
Influence of amorphous phase on coercivity in SmCo₅-Cu nanocomposites
In: Scripta Materialia, Vol. 240 (2024), Article 115808
2024article/chapter in journalOA Green
Materials EngineeringPhysics (incl. Astronomy)Scientific institutes » Center for Nanointegration Duisburg-Essen (CENIDE)Faculty of Physics
Related: 1 publication(s)
Title in English:
Influence of amorphous phase on coercivity in SmCo₅-Cu nanocomposites
Author:
Staab, Franziska
;
Yang, Yangyiwei
Other
corresponding author
;
Foya, Eren
;
Bruder, Enrico
;
Zingsem, BenjaminUDE
LSF ID
59828
ORCID
0000-0002-9899-2700ORCID iD
Other
connected with university
;
Adabifiroozjaei, Esmaeil
;
Nasiou, Despoina
;
Skokov, Konstantin
;
Koch, David
;
Farle, MichaelUDE
GND
1029383219
LSF ID
3560
ORCID
0000-0002-1864-3261ORCID iD
Other
connected with university
;
Dunin-Borkowski, Rafal E.
;
Molina-Luna, Leopoldo
;
Gutfleisch, Oliver
;
Xu, Bai-Xiang
;
Durst, Karsten
Year of publication:
2024
Open Access?:
OA Green
arXiv.org ID
Scopus ID
Language of text:
English
Keyword, Topic:
Amorphous SmCo5 ; High-pressure torsion ; Micromagnetic simulation ; Severe plastic deformation ; SmCo5-Cu nanocomposites
Type of resource:
Text

Abstract in English:

Severe plastic deformation of powder blends consisting of SmCo5-Cu results in magnetically hardened nanocomposite bulk materials. The microstructure is continuously refined with increasing torsional deformation, yet, coercivity saturates at a certain level of strain. Transmission electron microscopy (TEM) investigation of the microstructure reveals a partial amorphization of the SmCo5 phase due to high-pressure torsion by 20 applied rotations. In this amorphous matrix nanocrystals are embedded. The effect of these experimentally observed microstructural features on the magnetic properties are investigated by micromagnetic simulations, which show that an increasing volume fraction of nanocrystals is beneficial for higher coercivities. For a fixed volume fraction of nanocrystals the simulations reveal an increasing coercivity with decreasing the size of the nanocrystals due to increasing number of interfaces acting as pinning sites. Furthermore, our micromagnetic simulations disclose the mechanisms of the saturation and decline of magnetic hardening due to the strain induced by high-pressure torsion. The calculated coercivity fits very well to the experimentally observed coercivity of Hc = 1:34T. The knowledge can also be used to develop and provide optimization strategies from the microstructure perspective.