Long-range spin wave imaging with nitrogen vacancy centers and time resolved magneto-optical measurements

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Abstract

Spin waves, the fundamental excitations in magnetic materials, are promising candidates for realizing low-dissipation information processing in spintronics. The ability to visualize and manipulate coherent spin-wave transport is crucial for the development of spin wave-based devices. We use a recently discovered method utilizing nitrogen vacancy (NV) centers, point defects in the diamond lattice, to measure spin waves in thin film magnetic insulators by detecting their magnetic stray field. We experimentally demonstrate enhanced contrast in the detected wavefront amplitudes by imaging spin waves underneath a reference stripline and phenomenologically model the results. By extracting the spin wave dispersion and comparing NV center based spin wave measurements to spin wave imaging conducted through the well-established time-resolved magneto-optical Kerr effect, we discuss the advantages and limitations of employing NV centers as spin wave sensors.

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Lüthi, C., Colombo, L., Vilsmeier, F., & Back, C. (2025). Long-range spin wave imaging with nitrogen vacancy centers and time resolved magneto-optical measurements. Review of Scientific Instruments, 96(3). https://doi.org/10.1063/5.0243762

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