AI Article Synopsis

  • Controlling magnon densities in magnetic materials can improve spin transport in devices, and this study shows how large out-of-equilibrium magnon densities are created in a thin-film magnetic insulator using microwave excitation.
  • Researchers utilize scanning-probe magnetometry with diamond electron spins to image both coherent spin waves and the resulting incoherent magnon gas, which extends hundreds of micrometers from the excitation area.
  • The findings reveal that the gas density surpasses expectations for a boson system, highlighting new avenues for manipulating spin transport and magnetic dynamics in specific directions.

Article Abstract

Controlling magnon densities in magnetic materials enables driving spin transport in magnonic devices. We demonstrate the creation of large, out-of-equilibrium magnon densities in a thin-film magnetic insulator via microwave excitation of coherent spin waves and subsequent multimagnon scattering. We image both the coherent spin waves and the resulting incoherent magnon gas using scanning-probe magnetometry based on electron spins in diamond. We find that the gas extends unidirectionally over hundreds of micrometers from the excitation stripline. Surprisingly, the gas density far exceeds that expected for a boson system following a Bose-Einstein distribution with a maximum value of the chemical potential. We characterize the momentum distribution of the gas by measuring the nanoscale spatial decay of the magnetic stray fields. Our results show that driving coherent spin waves leads to a strong out-of-equilibrium occupation of the spin-wave band, opening new possibilities for controlling spin transport and magnetic dynamics in target directions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8517981PMC
http://dx.doi.org/10.1021/acs.nanolett.1c02654DOI Listing

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