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2022 ◽  
pp. 2111653
Author(s):  
Yu‐Han Huang ◽  
Chao‐Yao Yang ◽  
Chih‐Wei Cheng ◽  
Albert Lee ◽  
Chih‐Hsiang Tseng ◽  
...  
Keyword(s):  

Author(s):  
Natalia Rinaldi-Montes ◽  
Pedro Gorria ◽  
Antonio Benito Fuertes ◽  
David Martínez-Blanco ◽  
Zakariae Amghouz ◽  
...  

Bulk Cr2O3 is an antiferromagnetic oxide that exhibits the magneto-electric effect at room temperature, with neither spontaneous magnetization nor net electric polarization. These physical properties stem from a subtle competition...


Author(s):  
Fridrik Magnus ◽  
Unnar B Arnalds ◽  
Heikki Palonen ◽  
Gunnar Karl Pálsson ◽  
Hasan Ali ◽  
...  

2021 ◽  
Vol 868 ◽  
pp. 159072
Author(s):  
Lama Rifai ◽  
Farah Fattouh ◽  
Khulud Habanjar ◽  
Nader Yaacoub ◽  
Ramadan Awad

2021 ◽  
Vol 132 ◽  
pp. 107137
Author(s):  
J. Kaštil ◽  
J. Kamarád ◽  
M. Míšek ◽  
O. Isnard ◽  
M. Amara ◽  
...  

2021 ◽  
pp. 150071
Author(s):  
Anjan Bhukta ◽  
George Levi ◽  
Dror Horvitz ◽  
Amit Kohn ◽  
Ilan Goldfarb

2021 ◽  
Vol 13 (13) ◽  
pp. 15774-15782
Author(s):  
Huihui Ji ◽  
Guowei Zhou ◽  
Xiaojiao Wang ◽  
Jun Zhang ◽  
Penghua Kang ◽  
...  

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Dustin A. Gilbert ◽  
Peyton D. Murray ◽  
Julius De Rojas ◽  
Randy K. Dumas ◽  
Joseph E. Davies ◽  
...  

AbstractThe first order reversal curve (FORC) method is a magnetometry based technique used to capture nanoscale magnetic phase separation and interactions with macroscopic measurements using minor hysteresis loop analysis. This makes the FORC technique a powerful tool in the analysis of complex systems which cannot be effectively probed using localized techniques. However, recovering quantitative details about the identified phases which can be compared to traditionally measured metrics remains an enigmatic challenge. We demonstrate a technique to reconstruct phase-resolved magnetic hysteresis loops by selectively integrating the measured FORC distribution. From these minor loops, the traditional metrics—including the coercivity and saturation field, and the remanent and saturation magnetization—can be determined. In order to perform this analysis, special consideration must be paid to the accurate quantitative management of the so-called reversible features. This technique is demonstrated on three representative materials systems, high anisotropy FeCuPt thin-films, Fe nanodots, and SmCo/Fe exchange spring magnet films, and shows excellent agreement with the direct measured major loop, as well as the phase separated loops.


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