Gigahertz phononic integrated circuits on thin-film lithium niobate on sapphire
Felix M. Mayor, Wentao Jiang, Christopher J. Sarabalis, Timothy P., McKenna, Jeremy D. Witmer, Amir H. Safavi-Naeini

TL;DR
This paper introduces a novel integrated phononic platform on thin-film lithium niobate on sapphire, enabling efficient guiding, delay, and nonlinear processing of acoustic waves for classical and quantum applications.
Contribution
It presents a new phononic circuit platform with strong piezoelectric coupling, efficient transducers, and low-loss guiding, advancing integrated acoustic device capabilities.
Findings
Achieved high-quality factor of ~50,000 at 4 K
Demonstrated phononic four-wave mixing and nonlinear coefficients
Realized acoustic delay lines and resonators
Abstract
Acoustic devices play an important role in classical information processing. The slower speed and lower losses of mechanical waves enable compact and efficient elements for delaying, filtering, and storing of electric signals at radio and microwave frequencies. Discovering ways of better controlling the propagation of phonons on a chip is an important step towards enabling larger scale phononic circuits and systems. We present a platform, inspired by decades of advances in integrated photonics, that utilizes the strong piezoelectric effect in a thin film of lithium niobate on sapphire to excite guided acoustic waves immune from leakage into the bulk due to the phononic analogue of index-guiding. We demonstrate an efficient transducer matched to 50 ohm and guiding within a 1-micron wide mechanical waveguide as key building blocks of this platform. Putting these components together, we…
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