Gigahertz phononic integrated circuits on thin-film lithium niobate on sapphire
arXiv:2007.04961 · doi:10.1103/PhysRevApplied.15.014039
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 realize acoustic delay lines, racetrack resonators, and meander line waveguides for sensing applications. To evaluate the promise of this platform for emerging quantum technologies, we characterize losses at low temperature and measure quality factors on the order of 50,000 at 4 kelvin. Finally, we demonstrate phononic four-wave mixing in these circuits and measure the nonlinear coefficients to provide estimates of the power needed for relevant parametric processes.
15 pages,12 figures, the first two authors contributed equally
References in corpus (6)
- Interaction between light and highly confined hypersound in a silicon photonic nanowire
- Phonon-mediated quantum state transfer and remote qubit entanglement
- Continuous mode cooling and phonon routers for phononic quantum networks
- Phononic band structure engineering for high-Q gigahertz surface acoustic wave resonators on lithium niobate
- Integrated microwave acousto-optic frequency shifter on thin-film lithium niobate
- Propagation and imaging of mechanical waves in a highly-stressed single-mode phononic waveguide
Cited by in corpus (23)
- Integrated photonics on thin-film lithium niobate
- Electrical Control of Surface Acoustic Waves
- Long-range transport of 2D excitons with acoustic waves
- Piezoelectric actuation for integrated photonics
- Optomechanical ring resonator for efficient microwave-optical frequency conversion
- Gallium nitride phononic integrated circuits for future RF front-ends
- Thermal Modulation of Gigahertz Surface Acoustic Waves on Lithium Niobate
- High-bandwidth CMOS-voltage-level electro-optic modulation of 780 nm light in thin-film lithium niobate
- High-frequency traveling-wave phononic cavity with sub-micron wavelength
- Optomechanical generation of coherent GHz vibrations in a phononic waveguide
- Low-loss GHz frequency phononic integrated circuits in Gallium Nitride for compact radio-frequency acoustic wave devices
- A soft-clamped topological waveguide for phonons
- Low-phase-noise surface-acoustic-wave oscillator using an edge mode of a phononic band gap
- Silicon-lattice-matched boron-doped gallium phosphide: A scalable acousto-optic platform
- Directional emission in an on-chip acoustic waveguide
- Adiabatic conversion between gigahertz quasi-Rayleigh and quasi-Love modes for phononic integrated circuits
- On-chip 7 GHz acousto-optic modulators for visible wavelengths
- Buckling-induced quadratic nonlinearity in silicon phonon waveguide structures
- Semiconductor-on-diamond cavities for spin optomechanics
- Temporal dynamics of GHz acoustic waves in chipscale phononic integrated circuits
- On-chip cavity electro-acoustics using lithium niobate phononic crystal resonators
- Boundary-induced helical bulk acoustic transport in LiNbO3 thin films
- Direct Visualization of Gigahertz Acoustic Wave Propagation in Suspended Phononic Circuits