Local density of states as a probe for tunneling magnetoresistance effect: application to ferrimagnetic tunnel junctions
arXiv:2210.01441 · doi:10.1103/PhysRevB.107.214442
Abstract
We investigate the tunneling magnetoresistance (TMR) effect using the lattice models which describe the magnetic tunnel junctions (MTJ). First, taking a conventional ferromagnetic MTJ as an example, we show that the product of the local density of states (LDOS) at the center of the barrier traces the TMR effect qualitatively. The LDOS inside the barrier has the information on the electrodes and the electron tunneling through the barrier, which enables us to easily evaluate the tunneling conductance more precisely than the conventional Julliere's picture. We then apply this method to the MTJs with collinear ferrimagnets and antiferromagnets. We find that the TMR effect in the ferrimagnetic and antiferromagnetic MTJs changes depending on the interfacial magnetic structures originating from the sublattice structure, which can also be captured by the LDOS. Our findings will reduce the computational cost for the qualitative evaluation of the TMR effect, and be useful for a broader search for the materials which work as the TMR devices showing high performance.
11 pages, 11 figures
References in corpus (11)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Advanced capabilities for materials modelling with Quantum ESPRESSO
- Giant and tunneling magnetoresistance effects from anisotropic and valley-dependent spin-momentum interactions in antiferromagnets
- Tunneling Magnetoresistance in Noncollinear Antiferromagnetic Tunnel Junctions
- Perspective on Metallic Antiferromagnets
- Spin Transfer Torque in Antiferromagnetic Spin-Valves: From Clean to Disordered Regimes
- A review of modelling in ferrimagnetic spintronics
- Robust spin-transfer torque and magnetoresistance in non-collinear antiferromagnetic junctions
- Interfacial giant tunnel magnetoresistance and bulk-induced large perpendicular magnetic anisotropy in (111)-oriented junctions with fcc ferromagnetic alloys: A first-principles study
- Interface-driven giant tunnel magnetoresistance in (111)-oriented junctions
- Crucial role of interfacial - exchange interaction in the temperature dependence of tunnel magnetoresistance