Thickness dependence of the mechanical properties of piezoelectric high-Qm nanomechanical resonators made from aluminium nitride
Journal article, 2024

Nanomechanical resonators with high quality factors (Qm) enable mechanics-based quantum technologies, in particular quantum sensing and quantum transduction. High-Qm nanomechanical resonators in the kHz to MHz frequency range can be realized in tensile-strained thin films that allow the use of dissipation dilution techniques to drastically increase Qm. In our work, we study the material properties of tensile-strained piezoelectric films made from aluminium nitride (AlN). We characterize crystalline AlN films with a thickness ranging from 45 nm to 295 nm, which are directly grown on Si(111) by metal-organic vapour-phase epitaxy. We report on the crystal quality and surface roughness, the piezoelectric response, and the residual and released stress of the AlN thin films. Importantly, we determine the intrinsic quality factor of the films at room temperature in high vacuum. We fabricate and characterize AlN nanomechanical resonators that exploit dissipation dilution to enhance the intrinsic quality factor by utilizing the tensile strain in the film. We find that AlN nanomechanical resonators below 200 nm thickness exhibit the highest Q m × f m -product, on the order of 1012 Hz. We discuss possible strategies to optimize the material growth that should lead to devices that reach even higher Q m × f m -products. This will pave the way for future advancements of optoelectromechanical quantum devices made from tensile-strained piezoelectric AlN.

nanotechnology

appled physics

quantum technology

nanomechanics

sensing

Author

Anastasiia Ciers

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

Alexander Wolfgang Martin Jung

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

Joachim Ciers

Chalmers, Microtechnology and Nanoscience (MC2), Photonics

Laurentius Radit Nindito

Student at Chalmers

Hannes Pfeifer

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

Armin Dadgar

Otto von Guericke Universitaet Magdeburg

Jürgen Bläsing

Otto von Guericke Universitaet Magdeburg

André Strittmatter

Otto von Guericke Universitaet Magdeburg

Witlef Wieczorek

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

Materials for Quantum Technology

26334356 (eISSN)

Vol. 4 4 046301

Wallenberg Centre for Quantum Technology (WACQT)

Knut and Alice Wallenberg Foundation (KAW 2017.0449, KAW2021.0009, KAW2022.0006), 2018-01-01 -- 2030-03-31.

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European Commission (EC) (F-ENUAC-2022-0003), 2023-10-01 -- 2026-09-30.

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European Commission (EC) (F-DUT-2022-0078), 2023-10-01 -- 2026-09-30.

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Subject Categories (SSIF 2011)

Other Materials Engineering

Condensed Matter Physics

Infrastructure

Nanofabrication Laboratory

DOI

10.1088/2633-4356/ad9b64

Related datasets

Thickness dependence of the mechanical properties of piezoelectric high-Q_m nanomechanical resonators made from aluminium nitride [dataset]

DOI: 10.5281/zenodo.13890719

More information

Latest update

1/14/2025