High-Q Trampoline Resonators from Strained Crystalline InGaP for Integrated Free-Space Optomechanics
Journal article, 2023

Nanomechanical resonators realized from tensile-strained materials reach ultralow mechanical dissipation in the kHz to MHz frequency range. Tensile-strained crystalline materials that are compatible with epitaxial growth of heterostructures would thereby at the same time allow realizing monolithic free-space optomechanical devices, which benefit from stability, ultrasmall mode volumes, and scalability. In our work, we demonstrate nanomechanical string and trampoline resonators made from tensile-strained InGaP, which is a crystalline material that is epitaxially grown on an AlGaAs heterostructure. We characterize the mechanical properties of suspended InGaP nanostrings, such as anisotropic stress, yield strength, and intrinsic quality factor. We find that the latter degrades over time. We reach mechanical quality factors surpassing 107 at room temperature with a Q·f product as high as 7 × 1011Hz with trampoline-shaped resonators. The trampoline is patterned with a photonic crystal to engineer its out-of-plane reflectivity, desired for efficient signal transduction of mechanical motion to light.

nanomechanics

optomechanics

photonic crystal

InGaP

radiation loss

high stress

Author

Sushanth Kini Manjeshwar

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

Anastasiia Ciers

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

Fia Hellman

Student at Chalmers

Jürgen Bläsing

Otto von Guericke Universitaet Magdeburg

André Strittmatter

Otto von Guericke Universitaet Magdeburg

Witlef Wieczorek

Chalmers, Microtechnology and Nanoscience (MC2), Quantum Technology

Nano Letters

1530-6984 (ISSN) 1530-6992 (eISSN)

Vol. 23 11 5076-5082

Nonlinear interaction between light and mechanical motion for quantum optics and quantum sensing experiments

Swedish Research Council (VR) (2019-04946), 2020-01-01 -- 2023-12-31.

Subject Categories

Atom and Molecular Physics and Optics

Other Physics Topics

Other Materials Engineering

Condensed Matter Physics

DOI

10.1021/acs.nanolett.3c00996

PubMed

37234019

More information

Latest update

7/6/2023 1