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Michaël Ménard

Publications and source records attributed to Michaël Ménard.

3 recordsLinked to original sources

Integrated Silicon Nitride Devices via Inverse Design

Integrated photonic devices made of silicon nitride (SiN), which can be integrated with silicon-on-insulator and III-V platforms, are expected to drive the expansion of silicon photonics technology. However, the relatively low refractive index contrast of SiN is often considered a limitation for creating compact and efficient devices. Here, we present three freeform SiN devices-a coarse wavelength-division multiplexer, a five-mode mode-division multiplexer, and a polarization beam splitter-while systematically benchmarking both the design capability and the fabrication repeatability and robustness of inverse-designed components. We demonstrate up to a 1200x reduction in footprint while maintaining relatively large minimum feature sizes of up to 160 nm, showing that inverse-designed SiN devices can be as compact as their silicon counterparts. These results enable high-density integration in SiN photonics and pave the way for multidimensional data transmission and quantum applications, as the inverse design technique can be applied to different SiN thicknesses and is potentially extendable to other low- and mid-index platforms.

physics.optics↗

Accurate modeling and characterization of photothermal forces in optomechanics

Photothermal effects have been pointed out as prominent sources of forces in optomechanical systems, competing with the standard radiation pressure interactions. In this Article, we derive a novel and accurate model for the prediction of photothermal forces and establish how some previous proposals can be complemented to yield precise results. As a proof-of-concept, we perform numerical and experimental tests on GaAs microdisks cavities and obtain striking agreement with our framework, revealing the importance of considering surface photothermal forces and the effects of multiple thermal modes in microphotonic devices.

physics.optics↗

Ar/Cl$_{2}$ etching of GaAs optomechanical microdisks fabricated with positive electroresist

A method to fabricate GaAs microcavities using only a soft mask with an electrolithographic pattern in an inductively coupled plasma etching is presented. A careful characterization of the fabrication process pinpointing the main routes for a smooth device sidewall is discussed. Using the final recipe, optomechanical microdisk resonators are fabricated. The results show a very high optical quality factors of $Q_\text{opt}>2\times 10^{5}$, among the largest already reported for dry-etching devices. The final devices are also shown to present high mechanical quality factors and an optomechanical vacuum coupling constant of $g_{0}=2π\times 13.6$ kHz enabling self-sustainable mechanical oscillations for an optical input power above $1$ mW.

physics.app-ph↗