Fully symmetric controllable integrated three-resonator photonic molecule
Jiawei Wang, Kaikai Liu, Qiancheng Zhao, Andrei Isichenko, Ryan Q., Rudy, Daniel J. Blumenthal

TL;DR
This paper demonstrates a fully symmetric three-resonator photonic molecule with high Q silicon nitride rings, achieving complete spectral control and tunability using integrated PZT actuators, advancing scalable quantum and spectral engineering applications.
Contribution
It introduces a scalable, fully symmetric three-resonator photonic molecule with integrated PZT tuning, enabling precise control of complex optical modes on a wafer-scale platform.
Findings
Achieved highest Q for PZT-controlled resonators without undercut waveguides
Demonstrated full control over six tunable supermodes
Validated model accurately predicts energy modes and spectra
Abstract
Photonic molecules can be used to realize complex optical energy states and modes, analogous to those found in molecules, with properties useful for applications like spectral engineering and quantum optics. It is desirable to implement photonic molecules using high quality factor photonic integrated ring resonators due to their narrow atom-like spectral resonance, tunability, and the ability to scale the number of resonators on a photonic circuit. However, to take full advantage of molecule spectral complexity and tuning degree of freedom, resonator structures should have full symmetry in terms of inter-resonator coupling and resonator-waveguide coupling as well as independent resonance tuning, and low power dissipation operation, in a scalable integration platform. To date, photonic molecule symmetry has been limited to dual- and triple-cavity geometries coupled to single- or…
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Taxonomy
TopicsPhotonic and Optical Devices · Advanced Photonic Communication Systems · Optical Network Technologies
