Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/170070
Title: Solidly mounted resonators with ultra-high operating frequencies based on 3R-MoS2 atomic flakes
Authors: Yang, Yang
Sun, Jiayi
Cai, Weifan
Liu, Zheng
Dejous, Corinne
De Matos, Magali
Hallil, Hamida
Zhang, Qing
Keywords: Engineering::Materials
Engineering::Electrical and electronic engineering
Issue Date: 2023
Source: Yang, Y., Sun, J., Cai, W., Liu, Z., Dejous, C., De Matos, M., Hallil, H. & Zhang, Q. (2023). Solidly mounted resonators with ultra-high operating frequencies based on 3R-MoS2 atomic flakes. Advanced Functional Materials, 33(29), 2300104-. https://dx.doi.org/10.1002/adfm.202300104
Project: 2018-T2-2-005 
A1983c0027 
ANR-10-IDEX-03-02 
Journal: Advanced Functional Materials 
Abstract: Conventional bulk and thin piezoelectric materials based film bulk acoustic resonators (FBARs) are facing an insurmountable challenge for millimetric frequency applications due to the poor piezoelectric properties of the materials when their thickness reaches the sub-micron regime. Novel FBARs for ultra-high working frequencies are in urgent demand to meet the requirements of the fast-growing 5/6G telecommunication techniques. Recent advances in 2D piezoelectric nanomaterials create an opportunity in this perspective. Here, the first FBAR chip based on 2D 3R-MoS2 ultrathin piezoelectric flakes with a solidly mounted resonator (SMR) architecture is reported. The typical resonant frequency for an SMR device based on ≈200 nm 3R-MoS2 flake reaches over 25 GHz with high reproducibility. Theoretical and finite element analysis suggest that the observed resonance is of longitudinal acoustic modes. This study demonstrates for the first time that the access to 2D piezoelectric nanomaterials makes high performance piezoelectric devices feasible for various promising applications including high-speed telecommunication, acousto-optic, and sensor fields,etc.
URI: https://hdl.handle.net/10356/170070
ISSN: 1616-301X
DOI: 10.1002/adfm.202300104
Schools: School of Electrical and Electronic Engineering 
School of Materials Science and Engineering 
Research Centres: Centre for Micro-/Nano-electronics (NOVITAS) 
Research Techno Plaza 
Rights: © 2023 The Authors. Advanced Functional Materials published by Wiley-VCH GmbH. This is an open access article under the terms of the Creative Commons Attribution-NonCommercial License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
Fulltext Permission: open
Fulltext Availability: With Fulltext
Appears in Collections:EEE Journal Articles

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