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physics.app-ph2026

Phononic Combs in Lithium Niobate Acoustic Resonators

Ian Anderson, Jack Kramer, Tzu-Hsuan Hsu +3

Frequency combs consist of a spectrum of evenly spaced spectral lines. Optical frequency combs enable technologies ranging from timing, LiDAR, and ultra-stable signal sources. Micr…

physics.app-ph2025

An 11.7-GHz ScAlN FBAR Filter: Case Study on Scaling Limits and Challenges

Sinwoo Cho, Byeongjin Kim, Lezli Matto +9

This paper reports an 11.7 GHz compact 50 ohm ladder filter based on single layer Scandium Aluminum Nitride (ScAlN) film bulk acoustic resonators (FBARs) with platinum (Pt) electro…

physics.app-ph2025

High-Q Millimeter-Wave Acoustic Resonators in Thin-Film Lithium Niobate Using Higher-Order Antisymmetric Modes

Vakhtang Chulukhadze, Jack Kramer, Tzu-Hsuan Hsu +2

This letter presents miniature millimeter wave (mmWave, above 30 GHz) acoustic resonators based on a single-layer thin-film lithium niobate (LN) platform. More specifically, we pre…

physics.app-ph2025

Periodically Poled Piezoelectric Lithium Niobate Resonator for Piezoelectric Power Conversion

Ziqian Yao, Clarissa Daniel, Lezli Matto +8

As the demand for compact and efficient power conversion systems increases, piezoelectric power converters have gained attention for their ability to replace bulky magnetic inducto…

physics.app-ph2025

Acoustic resonators above 100 GHz

Jack Kramer, Bryan T. Bosworth, Lezli Matto +8

Piezoelectric resonators are a common building block for signal processing because of their miniature size, low insertion loss, and high quality factor. As consumer electronics pus…

physics.app-ph2025

Thin-film scandium aluminum nitride bulk acoustic resonator with high Q of 208 and K2 of 9.5% at 12.5 GHz

Sinwoo Cho, Yinan Wang, Eugene Kwon +9

This work describes sputtered scandium aluminum nitride (ScAlN) thin-film bulk acoustic resonators (FBAR) at 12.5 GHz with high electromechanical coupling (k2) of 9.5% and quality…