Abstract

Linear dichroism — the polarization dependent absorption of electromagnetic waves— is routinely exploited in applications as diverse as structure determination of DNA or polarization filters in optical technologies. Here filamentary absorbers with a large length-to-width ratio are a prerequisite. For magnetization dynamics in the few GHz frequency regime strictly linear dichroism was not observed for more than eight decades. Here, we show that the bulk chiral magnet Cu2OSeO3 exhibits linearly polarized magnetization dynamics at an unexpectedly small frequency of about 2 GHz at zero magnetic field. Unlike optical filters that are assembled from filamentary absorbers, the magnet is shown to provide linear polarization as a bulk material for an extremely wide range of length-to-width ratios. In addition, the polarization plane of a given mode can be switched by 90° via a small variation in width. Our findings shed a new light on magnetization dynamics in that ferrimagnetic ordering combined with antisymmetric exchange interaction offers strictly linear polarization and cross-polarized modes for a broad spectrum of sample shapes at zero field. The discovery allows for novel design rules and optimization of microwave-to-magnon transduction in emerging microwave technologies.

Highlights

  • Microwave components such as power limiters, oscillators and tunable bandpass filters exploit the precession of magnetic moments

  • The integration of magnets with microwave electronics could be significantly improved by a ferrimagnetic insulator similar to yttrium iron garnet (YIG) that possesses linearly polarized magnetization dynamics

  • A ferrimagnet with Dzyaloshinskii-Moriya interaction (DMI) allows for the polarization control of microwaves in frequency regimes that are key for modern telecommunication networks

Read more

Summary

Introduction

Microwave components such as power limiters, oscillators and tunable bandpass filters exploit the precession of magnetic moments (spins). We observe the linearly polarized magnetization dynamics for the modes +Q and −Q of the spin-helix phase at zero magnetic field.

Results
Conclusion
Full Text
Published version (Free)

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call