Low-phase-noise surface acoustic wave oscillator using phononic crystal bandgap-edge mode
Low-phase-noise microwave-frequency integrated oscillators provide compact solutions for various applications in signal processing, communications, and sensing. Surface acoustic waves (SAW), featuring orders-of-magnitude shorter wavelength than electromagnetic waves at the same frequency, enable int...
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Zusammenfassung: | Low-phase-noise microwave-frequency integrated oscillators provide compact
solutions for various applications in signal processing, communications, and
sensing. Surface acoustic waves (SAW), featuring orders-of-magnitude shorter
wavelength than electromagnetic waves at the same frequency, enable integrated
microwave-frequency systems with much smaller footprint on chip. SAW devices
also allow higher quality (Q) factors than electronic components at room
temperature. Here, we demonstrate a low-phase-noise gigahertz-frequency SAW
oscillator on 128{\deg}Y-cut lithium niobate, where the SAW resonator occupies
a footprint of 0.05 mm$^2$. Leveraging phononic crystal bandgap-edge modes to
balance between Q factors and insertion losses, our 1-GHz SAW oscillator
features a low phase noise of -132.5 dBc/Hz at a 10 kHz offset frequency and an
overlapping Hadamard deviation of $6.5\times10^{-10}$ at an analysis time of 64
ms. The SAW resonator-based oscillator holds high potential in developing
low-noise sensors and acousto-optic integrated circuits. |
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DOI: | 10.48550/arxiv.2409.03162 |