1. Controlling Magnetic and Optical Properties of the van der Waals Crystal CrCl 3− x Br x via Mixed Halide Chemistry
- Author
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Kenneth S. Burch, Gavin B. Osterhoudt, Samantha T. Jaszewski, Fazel Tafti, Yiping Wang, Mykola Abramchuk, and Kenneth R. Metz
- Subjects
Materials science ,Condensed matter physics ,Spintronics ,Mechanical Engineering ,02 engineering and technology ,021001 nanoscience & nanotechnology ,01 natural sciences ,Crystal ,Magnetic anisotropy ,symbols.namesake ,Exchange bias ,Ferromagnetism ,Mechanics of Materials ,0103 physical sciences ,symbols ,General Materials Science ,Ising model ,van der Waals force ,010306 general physics ,0210 nano-technology ,Anisotropy - Abstract
Magnetic van der Waals (vdW) materials are the centerpiece of atomically thin devices with spintronic and optoelectronic functions. Exploring new chemistry paths to tune their magnetic and optical properties enables significant progress in fabricating heterostructures and ultracompact devices by mechanical exfoliation. The key parameter to sustain ferromagnetism in 2D is magnetic anisotropy-a tendency of spins to align in a certain crystallographic direction known as easy-axis. In layered materials, two limits of easy-axis are in-plane (XY) and out-of-plane (Ising). Light polarization and the helicity of topological states can couple to magnetic anisotropy with promising photoluminescence or spin-orbitronic functions. Here, a unique experiment is designed to control the easy-axis, the magnetic transition temperature, and the optical gap simultaneously in a series of CrCl3-x Brx crystals between CrCl3 with XY and CrBr3 with Ising anisotropy. The easy-axis is controlled between the two limits by varying spin-orbit coupling with the Br content in CrCl3-x Brx . The optical gap, magnetic transition temperature, and interlayer spacing are all tuned linearly with x. This is the first report of controlling exchange anisotropy in a layered crystal and the first unveiling of mixed halide chemistry as a powerful technique to produce functional materials for spintronic devices.
- Published
- 2018