Experimental study of acoustic loss at microwave frequencies in thin-film lithium niobate
Abstract
Thin-film lithium niobate (TFLN) has emerged as a versatile platform for phononic and photonic devices with applications ranging from classical signal processing to quantum technologies. However, acoustic loss fundamentally limits the performance of acoustic devices on TFLN platforms, yet its physical origin remains insufficiently understood. Here, we systematically investigate acoustic propagation loss in various TFLN platforms, including lithium niobate on insulator (LNOI), lithium niobate on sapphire, suspended lithium niobate (LN) thin films, and bulk LN at gigahertz frequencies over temperatures ranging from 4 K to above room temperature. Using a delay-line method, we extract frequency- and temperature-dependent losses for Rayleigh, shear-horizontal, and Lamb modes. We observe an anomalous non-monotonic temperature dependence in LNOI that closely resembles acoustic loss in amorphous materials, suggesting a loss channel associated with the buried oxide layer at low temperatures. At elevated temperatures, the loss converges to the Akhiezer damping governed by phonon–phonon interactions. High-resolution electron microscopy further reveals nanoscale interfacial crystal impurities that may contribute to the increased acoustic loss in TFLN platforms relative to bulk LN. These results elucidate the acoustic loss mechanisms in TFLN and provide guidelines for designing low-loss acoustic devices.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (10)
Qixuan Lin
Yue Yu
Alejandra Guedeja-Marrón
Materials Sciences and Engineering Department, University of Washington 2 , Seattle, Washington 98115,
Catalina Scolnic
Materials Sciences and Engineering Department, University of Washington 2 , Seattle, Washington 98115,
Haoqin Deng
Department of Electrical and Computer Engineering, University of Washington 1 , Seattle, Washington 98115,
Shucheng Fang
Yibing Zhou
Bingzhao Li
Juan Carlos Idrobo
Mo Li