Nano Letters · 2021 · 52 citations · 31 references
EngineeringLow-dimensional MagnetismSpintronic MaterialMagnetic MaterialsSpin PhenomenonMagnetoresistanceSemiconductorsMagnetismNanoelectronicsMagnetic Topological InsulatorA-type Antiferromagnetic OrderElectric FieldMaterials ScienceElectrical EngineeringBipolar Magnetic SemiconductorsPhysicsElectrical ManipulationSpintronicsNatural SciencesApplied PhysicsCondensed Matter PhysicsMagnetic DeviceTopological HeterostructuresElectric-field Tunable Magnetism
Uncovering the physics behind the electrical manipulation of low-dimensional magnetic materials remains a fundamental issue in practical application of nanoscale spintronics. Here, we propose a strategy to transform A-type antiferromagnetic (AFM) semiconductors into asymmetric AFM unipolar or bipolar magnetic semiconductors by applying perpendicular electric fields in van der Waals bilayer systems. Electric fields lifting energy levels of electrons within same spin channel from consistent layers in opposite direction enables unipolar magnetic semiconductor, whereas electrons within opposite spin channel enable bipolar magnetic semiconductor. A comprehensive study demonstrates this discrepancy originates from spatial distributions of spin density of valence band and conduction band edges in two layers of systems. The electric field induced unipolar or bipolar magnetic semiconducting behavior represents great potential of nanoscale AFM spintronics for information storage and processing.
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Layer-dependent ferromagnetism in a van der Waals crystal down to the monolayer limit
Bevin Huang, Genevieve Clark, Efrén Navarro‐Moratalla et al. · Nature · 2017 · 5.6K citations · Full text
Two-dimensional itinerant ferromagnetism in atomically thin Fe3GeTe2
Nature Materials · 2018 · 1.4K citations · Full text
Nobel Lecture: Origin, development, and future of spintronics
A. Fert · Reviews of Modern Physics · 2008 · 1.2K citations · Full text