Tunnel Magnetoresistance with Atomically Thin Two-Dimensional Hexagonal Boron Nitride Barriers
arXiv:1411.3524 · doi:10.1007/s12274-014-0627-4
Abstract
The two-dimensional atomically thin insulator hexagonal boron nitride (h-BN) constitutes a new paradigm in tunnel based devices. A large band gap along with its atomically flat nature without dangling bonds or interface trap states makes it an ideal candidate for tunnel spin transport in spintronic devices. Here, we demonstrate the tunneling of spin-polarized electrons through large area monolayer h-BN prepared by chemical vapor deposition in magnetic tunnel junctions. In ferromagnet/h-BN/ferromagnet heterostructures fabricated over a chip scale, we show tunnel magneto resistance at room temperature. Measurements at different bias voltages and on multiple devices with different ferromagnetic electrodes establish the spin polarized tunneling using h-BN barriers. These results open the way for integration of 2D monolayer insulating barriers in active spintronic devices and circuits operating at ambient temperature, and for further exploration of their properties and prospects.
References in corpus (9)
- Two Dimensional Atomic Crystals
- Boron nitride substrates for high-quality graphene electronics
- Hunting for Monolayer Boron Nitride: Optical and Raman Signatures
- Atomically thin boron nitride: a tunnelling barrier for graphene devices
- Graphite and graphene as perfect spin filters
- Graphene-Passivated Nickel as an Oxidation-Resistant Electrode for Spintronics
- Magnetoresistive junctions based on epitaxial graphene and hexagonal boron nitride
- Efficient Spin Injection into Silicon and the Role of the Schottky Barrier
- Spin Transport and Precession in Graphene measured by Nonlocal and Three-Terminal Methods