Vacuum-sealed silicon photonic MEMS tunable ring resonator with an independent control over coupling and phase

  • Pierre Edinger
  • , Gaehun Jo
  • , Chris Phong van Nguyen
  • , Alain Yuji Takabayashi
  • , Carlos Errando-Herranz
  • , Cleitus Antony
  • , Giuseppe Talli
  • , Peter Verheyen
  • , Umar Khan
  • , Simon J. Bleiker
  • , Wim Bogaerts
  • , Niels Quack
  • , Frank Niklaus
  • , Kristinn B. Gylfason

Research output: Contribution to journalArticlepeer-review

Abstract

Ring resonators are a vital element for filters, optical delay lines, or sensors in silicon photonics. However, reconfigurable ring resonators with low-power consumption are not available in foundries today. We demonstrate an add-drop ring resonator with the independent tuning of round-trip phase and coupling using low-power microelectromechanical (MEMS) actuation. At a wavelength of 1540 nm and for a maximum voltage of 40 V, the phase shifters provide a resonance wavelength tuning of 0.15 nm, while the tunable couplers can tune the optical resonance extinction ratio at the through port from 0 to 30 dB. The optical resonance displays a passive quality factor of 29 000, which can be increased to almost 50 000 with actuation. The MEMS rings are individually vacuum-sealed on wafer scale, enabling reliable and long-term protection from the environment. We cycled the mechanical actuators for more than 4 × 109 cycles at 100 kHz, and did not observe degradation in their response curves. On mechanical resonance, we demonstrate a modulation increase of up to 15 dB, with a voltage bias of 4 V and a peak drive amplitude as low as 20 mV.

Original languageEnglish
Pages (from-to)6540-6551
Number of pages12
JournalOptics Express
Volume31
Issue number4
DOIs
Publication statusPublished - 13 Feb 2023

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