4.8 Article

A magnon scattering platform

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2019473118

关键词

scattering; condensed matter physics; quantum sensing; magnetometry; magnon

资金

  1. US Department of Energy, Basic Energy Sciences Office, Division of Materials Sciences and Engineering [DESC0001819, DESC0019300]
  2. Army Research Office (ARO) [W911NF-17-1-0023]
  3. Gordon and Betty Moore Foundation's EPiQS Initiative [GBMF4531]
  4. ARO [W911NF1810316, W911NF1810206]
  5. Netherlands Organisation for Scientific Research (NWO/OCW) , as part of the Frontiers of Nanoscience program
  6. ZenoKarlSchindler Master Thesis Grant
  7. Air Force Office of Scientific Research-Multidisciplinary Research Program of the University Research Initiative Photonic Quantum Matter [FA95501610323]
  8. Defense Advanced Research Projects Agency Driven and Nonequilibrium Quantum Systems program [D18AC00014]
  9. Harvard Quantum Initiative
  10. Research Foundation Flanders (FWO)
  11. European Union [820394]
  12. Air Force Office of Scientific Research [FA95502010319]
  13. NSF [EFMA1542807, ECCS1541959]
  14. HarvardMIT Center for Ultracold Atoms
  15. U.S. Department of Defense (DOD) [W911NF1810206, W911NF1810316, FA95502010319] Funding Source: U.S. Department of Defense (DOD)

向作者/读者索取更多资源

Scattering experiments play a crucial role in studying magnetic properties of materials. By generating magnonic excitations and recording scattered waves, spatial information about the scattering potential of the target can be obtained.
Scattering experiments have revolutionized our understanding of nature. Examples include the discovery of the nucleus [R. G. Newton, Scattering Theory of Waves and Particles (1982)], crystallography [U. Pietsch, V. HolATIN SMALL LETTER Y WITH ACUTE, T. Baumback, High-Resolution X-Ray Scattering (2004)], and the discovery of the double-helix structure of DNA [J. D. Watson, F. H. C. Crick, Nature 171, 737-738]. Scattering techniques differ by the type of particles used, the interaction these particles have with target materials, and the range of wavelengths used. Here, we demonstrate a two-dimensional table-top scattering platform for exploring magnetic properties of materials on mesoscopic length scales. Long-lived, coherent magnonic excitations are generated in a thin film of yttrium iron garnet and scattered off a magnetic target deposited on its surface. The scattered waves are then recorded using a scanning nitrogen vacancy center magnetometer that allows subwavelength imaging and operation under conditions ranging from cryogenic to ambient environment. While most scattering platforms measure only the intensity of the scattered waves, our imaging method allows for spatial determination of both amplitude and phase of the scattered waves, thereby allowing for a systematic reconstruction of the target scattering potential. Our experimental results are consistent with theoretical predictions for such a geometry and reveal several unusual features of the magnetic response of the target, including suppression near the target edges and a gradient in the direction perpendicular to the direction of surface wave propagation. Our results establish magnon scattering experiments as a platform for studying correlated many-body systems.

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