Optical magnetic mirrors without metals

Sheng Liu, Michael B. Sinclair, Thomas S. Mahony, Young Chul Jun, Salvatore Campione, James Ginn, Daniel A. Bender, Joel R. Wendt, Jon F. Ihlefeld, Paul G. Clem, Jeremy B. Wright, Igal Brener

Research output: Contribution to journalArticlepeer-review

198 Scopus citations

Abstract

The reflection of an optical wave from metal, arising from strong interactions between the optical electric field and the free carriers of the metal, is accompanied by a phase reversal of the reflected electric field. A far less common route to achieving high reflectivity exploits strong interactions between the material and the optical magnetic field to produce a “magnetic mirror” that does not reverse the phase of the reflected electric field. At optical frequencies, the magnetic properties required for strong interaction can be achieved only by using artificially tailored materials. Here, we experimentally demonstrate, for the first time to the best of our knowledge, the magnetic mirror behavior of a low-loss all-dielectric metasurface at infrared optical frequencies through direct measurements of the phase and amplitude of the reflected optical wave. The enhanced absorption and emission of transverse-electric dipoles placed close to magnetic mirrors can lead to exciting new advances in sensors, photodetectors, and light sources.

Original languageEnglish
Pages (from-to)250-256
Number of pages7
JournalOptica
Volume1
Issue number4
DOIs
StatePublished - 2014
Externally publishedYes

Keywords

  • Metamaterials
  • Mie theory
  • Spectroscopy, infrared
  • Spectroscopy, time-resolved
  • Ultrafast spectroscopy

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