4.6 Article

THz-frequency magnon-phonon-polaritons in the collective strong-coupling regime

Journal

JOURNAL OF APPLIED PHYSICS
Volume 125, Issue 21, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.5083849

Keywords

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Funding

  1. Center for Excitonics, an Energy Frontier Research Center (EFRC) - U.S. Department of Energy (DOE), Office of Science, Basic Energy Sciences (BES) [de-sc0001088]
  2. NSF [CHE-1665383]
  3. National Natural Science Foundation of China (NNSFC) [51372149, 51672171]
  4. Czech Science Foundation [15-08389S]
  5. Postgraduate Scholarship (PGSD) from the Natural Sciences and Engineering Research Council of Canada (NSERC)
  6. German National Academy of Sciences Leopoldina [LPDS 2016-02]

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Strong coupling between light and matter occurs when the two interact such that new hybrid modes, the so-called polaritons, are formed. Here, we report on the strong coupling of both the electric and the magnetic degrees of freedom to an ultrafast terahertz (THz) frequency electromagnetic wave. In our system, optical phonons in a slab of ferroelectric lithium niobate are strongly coupled to a THz electric field to form phonon-polaritons, which are simultaneously strongly coupled to magnons in an adjacent slab of canted antiferromagnetic erbium orthoferrite via the magnetic-field component of the same THz pulse. We juxtapose experimental results of bare slabs consisting of the two materials with a photonic crystal cavity, consisting of a two-dimensional array of air holes cut into the hybrid slab. In both cases, the strong coupling leads to the formation of new magnon-phonon-polariton modes, which we experimentally observe in the time domain as a normal-mode beating and which corresponds in the frequency domain to an avoided crossing. Our simple yet versatile waveguide platform provides a promising avenue through which to explore ultrafast THz spintronics, quantum electrodynamics, sensing, and spectroscopic applications.

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