Zero-Power Calibration Of Photonic Circuits At Cryogenic Temperatures

ACS PHOTONICS(2021)

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摘要
The continual success of superconducting photon-detection technologies in quantum photonics asserts cryogenic-compatible systems as a cornerstone of full quantum photonic integration. Here, we present a way to reversibly fine-tune the optical properties of individual waveguide structures through local changes to their geometry using solidified xenon. Essentially, we remove the need for additional on-chip calibration elements, effectively zeroing the power consumption tied to reconfigurable elements, with virtually no detriment to photonic device performance. We enable passive circuit tuning in pressure-controlled environments, locally manipulating the cladding thickness over portions of optical waveguides. We realize this in a cryogenic environment, through controlled deposition of xenon gas and precise tuning of its thickness using sublimation, triggered by on-chip resistive heaters. Jr-Phase shifts occur over a calculated length of just L-pi = 12.3 +/- 0.3 mu m. This work paves the way toward the integration of compact, reconfigurable photonic circuits alongside superconducting detectors, devices, or otherwise.
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关键词
integrated photonics, optical properties, quantum photonics, optical switching, calibration, phase-change, phase shift
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