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Quantum well photoelastic comb for ultra-high frequency cavity optomechanics

DOI:10.1088/2058-9565/aaf818 期刊:Quantum Science and Technology 出版年份:2018 更新时间:2025-09-23 15:22:29
摘要: Optomechanical devices operated at their quantum limit open novel perspectives for the ultrasensitive determination of mass and displacement, and also in the broader field of quantum technologies. The access to higher frequencies implies operation at higher temperatures and stronger immunity to environmental noise. We propose and demonstrate here a new concept of quantum well photoelastic comb for the efficient electrostrictive coupling of light to optomechanical resonances at hundreds of GHz in semiconductor hybrid resonators. A purposely designed ultra-high resolution Raman spectroscopy set-up is exploited to evidence the transfer of spectral weight from the mode at 60 GHz to modes at 190–230 GHz, corresponding to the 8th and 10th overtone of the fundamental breathing mode of the light-sound cavities. The coupling to mechanical frequencies two orders of magnitude larger than alternative approaches is attained without reduction of the optomechanical constant g0. The wavelength dependence of the optomechanical coupling further proves the role of resonant photoelastic interaction, highlighting the potentiality to access strong-coupling regimes. The experimental results show that electrostrictive forces allow for the design of devices optimized to selectively couple to specific mechanical modes. Our proposal opens up exciting opportunities towards the implementation of novel approaches applicable in quantum and ultra-high frequency information technologies.
作者: V Villafa?e,S Anguiano,A E Bruchhausen,G Rozas,A Fainstein,J Bloch,C Gomez Carbonell,A Lemai?tre
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To propose and demonstrate a quantum well photoelastic comb for efficient electrostrictive coupling of light to ultra-high frequency optomechanical resonances in semiconductor hybrid resonators, enabling higher frequency operation for quantum technologies.

The study successfully demonstrates a quantum well photoelastic comb that enhances optomechanical coupling to ultra-high frequency mechanical modes (up to 230 GHz) in semiconductor microcavities through electrostrictive forces. This approach achieves high optomechanical constants (g0 ≈ 2π × 2.2 MHz) and low threshold powers (~2 mW), enabling potential access to strong-coupling regimes. The resonant nature of the photoelastic interaction is confirmed, and the method offers a path for designing devices for quantum and high-frequency information technologies, with possibilities for further integration with other quantum systems.

The spectral resolution and bandwidth requirements are stringent for ultra-high frequency measurements; absolute Raman cross sections are not accessible, limiting quantitative comparisons; the experiments are performed at cryogenic temperatures (80 K), which may not be practical for all applications; and the design relies on specific material properties (GaAs/AlAs) and growth techniques (MBE), which could restrict scalability or integration with other systems.

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