Title :
Multi-frequency lithium niobate thin-film resonators
Author_Institution :
Cornell Univ., Ithaca, NY, USA
Abstract :
Summary form only given. To satisfy the ever-increasing demand for spectrum, commercial markets desire integrated multi-frequency “band”-select duplexer and diplexer filters, with fractional bandwidth (BW) ranging from 3% to 10% and steep roll-off for high stop band rejection. The achievable bandwidth of such filters is ultimately limited by the electro-mechanical coupling factor (kt2) of the resonators, while the roll-off is determined by resonator quality factor (Q). Therefore, resonators with both high kt2 and high Q are desired for large BW steep roll-off filters. In this talk I present the fabrication technology and design of thin-film lithium niobate (LN) contour-mode resonators. By carefully positioning the inter-digital transducer (IDT), we 2 achieved CMRs with kt2×Q of 148 (IDT @ node) and very high kt2 resonators with spur-attenuated response (IDT @ anti-node) [1,2] . We have demonstrated resonators with frequencies ranging from 400MHz to 1.9GHz on a single chip. Additionally, we have demonstrated high optical Q, GHz FSR photonic resonators on the same platform paving the way for high-bandwidth and efficient chip-scale microwave photonics [3].
Keywords :
Q-factor; UHF resonators; interdigital transducers; lithium compounds; microwave photonics; optical resonators; thin film devices; IDT; efficient-chip-scale microwave photonics; electromechanical coupling factor; fractional bandwidth; frequency 400 MHz to 1.9 GHz; high-bandwidth microwave photonics; high-optical Q GHz FSR photonic resonators; high-stop band rejection; integrated multifrequency band-select diplexer filter; integrated multifrequency band-select duplexer filter; inter-digital transducer; large-BW steep roll-off filters; multifrequency lithium niobate thin-film resonators; resonator quality factor; spur-attenuated response; thin-film lithium niobate contour-mode resonator design; thin-film lithium niobate contour-mode resonator fabrication; Distance measurement; Lithium niobate; Optical attenuators; Optical device fabrication; Optical filters; Optical resonators; Resonant frequency;
Conference_Titel :
Device Research Conference (DRC), 2014 72nd Annual
Conference_Location :
Santa Barbara, CA
Print_ISBN :
978-1-4799-5405-6
DOI :
10.1109/DRC.2014.6872277