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Published on: February 1, 2017
Néel vector controlled charge and spin transport in altermagnetic junctions
Shubham Ghadigaonkar1, Sachchidanand Das1, Abhiram Soori1
1School of Physics, University of Hyderabad, Prof. C. R. Rao Road, Gachibowli, Hyderabad 500046, India.
Altermagnets (AMs), materials with unique spin properties, show distinct electron transport behaviors in strong and weak phases. Their use in heterostructures offers tunable spintronic devices without external magnetic fields.
Area of Science:
- Condensed Matter Physics
- Materials Science
- Spintronics
Background:
- Altermagnets (AMs) are magnetic materials with spin-split bands and zero net spin polarization.
- AMs can be classified as strong or weak based on the altermagnetic term in their Hamiltonian.
Purpose of the Study:
- To theoretically investigate electron transport in junctions between strong and weak altermagnets.
- To analyze charge and spin conductivities as a function of the angle between N'eel vectors.
- To explore the impact of introducing a normal metal (NM) layer.
Main Methods:
- Theoretical investigation of electron transport.
- Analysis of charge and spin conductivities.
- Modeling of AM-NM-AM heterostructures.
Main Results:
- Charge conductivity vanishes in the strong AM regime as N'eel vectors align anti-parallel ($\theta \to \pi$), but remains finite in the weak regime.
- Fabry-P'erot-type oscillations in charge conductivity observed in AM-NM-AM junctions, tunable by gate voltage.
- Transport in the strong regime is dominated by up-spin electrons, while both spin channels contribute in the weak regime.
Conclusions:
- Altermagnetic heterostructures offer tunable spin-dependent transport.
- These materials hold potential for spintronic applications like spin filters and quantum interference devices.
- Device functionality can be achieved without externally applied magnetic fields.
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