Superfluid $^4$He as a rigorous test bench for different damping models in nanoelectromechanical resonators
Timo Kamppinen, Jere T. M\"akinen, Vladimir B. Eltsov

TL;DR
This study uses nanoelectromechanical resonators immersed in superfluid helium-4 to test and compare various damping models across different temperature regimes, revealing insights into damping mechanisms and superfluid effects.
Contribution
It provides a novel experimental platform for testing damping models in nanoresonators using superfluid helium-4 as a test bench.
Findings
Identification of damping mechanisms at different temperature regimes
Demonstration of in situ frequency tuning via superfluid flow
Characterization of tunneling two-level system losses and magnetomotive damping
Abstract
We have used nanoelectromechanical resonators to probe superfluid He at different temperature regimes, spanning over four orders of magnitude in damping. These regimes are characterized by the mechanisms which provide the dominant contributions to damping and the shift of the resonance frequency: tunneling two level systems at the lowest temperatures, ballistic phonons and rotons at few hundred mK, and laminar drag in the two-fluid regime below the superfluid transition temperature as well as in the normal fluid. Immersing the nanoelectromechanical resonators in fluid increases their effective mass substantially, decreasing their resonance frequency. Dissipationless superflow gives rise to a unique possibility to dramatically change the mechanical resonance frequency in situ, allowing rigorous tests on different damping models in mechanical resonators. We apply this method to…
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