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A VHF temperature compensated lithium niobate-on-oxide resonator with Q > 3900 for low phase noise oscillators
Conference paper

A VHF temperature compensated lithium niobate-on-oxide resonator with Q > 3900 for low phase noise oscillators

Grace W. Fang, Gayathri Pillai, Ming-Huang Li, Chun-You Liu and Sheng-Shian Li
Proceedings of the IEEE International Conference on Micro Electro Mechanical Systems (MEMS), Vol.2018-January, pp.723-726
04/2018

Abstract

Acoustic propagation;Bias instability;Compensated temperature;Lithium niobate;Low phase-noise oscillators;Shear horizontals;Temperature compensated;Wave oscillators Electronic,Optical and Magnetic Materials,Condensed Matter Physics,Mechanical Engineering,Electrical and Electronic Engineering
This work reports a 40-MHz lithium niobate-on-oxide (LN/S1O2) micromechanical resonator which simultaneously features a compensated temperature coefficient of frequency (TCf <sub>f</sub> of -13 ppm/°C and a record high Q > 3,900 in vacuum (Q > 1,600 in air) for low phase noise oscillators. A high-quality 0.7 μm X-cut LN thin film atop a 2 μm SiO <sub>2</sub> compensation layer was used to form the body of the proposed resonator based on a quasi-fundamental shear horizontal (Q-SH0) plate wave with acoustic propagation in 170° rotated from the Y-axis. The proposed LN-SiO <sub>2</sub> resonator is suspended through 5-μm narrow-width supporting beams to mitigate the acoustic energy loss to the substrate, thus exhibiting a best-case Q of 3,900 in vacuum with k <sub>eff</sub> <sup>2</sup> > 3.8% (FOM = k <sub>eff</sub> <sup>2</sup> ×Q > 148). The closed-loop oscillator was demonstrated with a commercial phase-locked loop (Zurich HF2LI PLL) under a loop bandwidth of 90 kHz. Measured phase noise for the 40-MHz LN-S1O <sub>2</sub> Q-SH <sub>0</sub> wave oscillator at 1 kHz and 10 kHz offsets is -110 dBc/Hz and -123 dBc/Hz, respectively, with a minimal bias instability of only 6.2 ppb.

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