Mechanical dissipation by substrate–mode coupling in SiN resonators

Journal Article (2022)
Author(s)

M.H.J. de Jong (TU Delft - Dynamics of Micro and Nano Systems, TU Delft - QN/Groeblacher Lab)

M.A. ten Wolde (TU Delft - Mechatronic Systems Design)

A. Cupertino (TU Delft - Dynamics of Micro and Nano Systems)

S. Groeblacher (TU Delft - QN/Groeblacher Lab)

P.G. Steeneken (TU Delft - Dynamics of Micro and Nano Systems, TU Delft - QN/Steeneken Lab)

R.A. Norte (TU Delft - Dynamics of Micro and Nano Systems, TU Delft - QN/Groeblacher Lab)

Research Group
Dynamics of Micro and Nano Systems
Copyright
© 2022 M.H.J. de Jong, M.A. ten Wolde, A. Cupertino, S. Groeblacher, P.G. Steeneken, R.A. Norte
DOI related publication
https://doi.org/10.1063/5.0092894
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 M.H.J. de Jong, M.A. ten Wolde, A. Cupertino, S. Groeblacher, P.G. Steeneken, R.A. Norte
Related content
Research Group
Dynamics of Micro and Nano Systems
Issue number
3
Volume number
121
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Abstract

State-of-the-art nanomechanical resonators are heralded as a central component for next-generation clocks, filters, resonant sensors, and quantum technologies. To practically build these technologies will require monolithic integration of microchips, resonators, and readout systems. While it is widely seen that mounting microchip substrates into a system can greatly impact the performance of high-Q resonators, a systematic study has remained elusive, owing to the variety of physical processes and factors that influence the dissipation. Here, we analytically analyze a mechanism by which substrates couple to resonators manufactured on them and experimentally demonstrate that this coupling can increase the mechanical dissipation of nanomechanical resonators when resonance frequencies of resonator and substrate coincide. More generally, we then show that a similar coupling mechanism can exist between two adjacent resonators. Since the substrate–mode coupling mechanism strongly depends on both the resonator position on the substrate and the mounting of the substrate, this work provides key design guidelines for high-precision nanomechanical technologies.