Mn<sub>2</sub>FeSi: Experimental realization of an antiferromagnetic inverse-Heusler alloy
POSTER
Abstract
Search for low-moment magnetic materials with high spin-polarization is important for future spintronics applications. In this work, we have conducted detailed and varied materials growth and characterization along with complementary first-principles calculations to investigate the structure and magnetism of Mn2FeSi, which is a prospective inverse-Heusler material identified by prior calculations. We show that Mn2FeSi adopts a cubic structure that is in very good agreement with theoretical estimates while the magnetic and resistivity measurements show behavior consistent with antiferromagnetism which can be tuned to a very low-moment state under appropriate growth conditions. Supporting first-principles calculations show that compensated antiferromagnetic states are energetically feasible. Our work provides new evidence that the magnetic properties of Manganese-based inverse-Heuslers can be useful to explore new applications in the area of spintronics.
*NSF CAREER grant (ECCS 1846829); NSF DMREF grant No. 1235396; U. S. Department of Energy (DOE), Office of Science, Basic Energy Sciences (BES) under Award No. DE-FG02-06ER46291 and DE-FG02-13ER46946
Presenters
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Dipanjan Mazumdar
- Physics, Southern Illinois University Carbondale
- Southern Illinois University Carbondale