Tamm Cavity in the Terahertz Spectral Range
Simon Messelot (1), Cl\'ementine Symonds (2), Jo\"el Bellessa (2),, J\'er\^ome Tignon (1), Sukhdeep Dhillon (1), Jean-Blaise Brubach (3), Pascale, Roy (3), Juliette Mangeney (1) ((1) Laboratoire de Physique de l\' Ecole, normale sup\'erieure, ENS, Universit\'e PSL, CNRS

TL;DR
This paper introduces a novel Tamm cavity resonator operating in the terahertz range, achieving high quality factors and tunability, with potential applications in THz optoelectronics and quantum devices.
Contribution
It presents the first application of Tamm modes to THz resonators, demonstrating high Q-factors, tunability, and polarization sensitivity through subwavelength metallic structuring.
Findings
High-quality factor of 230 at ~1 THz
Tuning range of 250 GHz for mode frequency
Mode confinement within λ/2 in the Bragg reflector
Abstract
Electromagnetic resonators, which are based on optical cavities or electronic circuits, are key elements to enhance and control light-matter interaction. In the THz range, current optical cavities exhibit very high-quality factors with mode volumes limited by diffraction, whereas resonant electronic circuits show low quality factor but provide strong subwavelength effective volume (). To overcome the limitations of each type of resonator, great efforts are being devoted to improving the performances of current methods or to the emergence of original approaches. Here, we report on an optical resonator based on Tamm modes newly applied to the THz range, comprising a metallic layer on a distributed Bragg reflector and demonstrating a high-quality factor of 230 at 1 THz. We further experimentally and theoretically show a fine-tuning of the Tamm mode…
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