论文标题
高频GAAS光学机械靶向谐振器
High-Frequency GaAs Optomechanical Bullseye Resonator
论文作者
论文摘要
在单个设备中,光力学和光电子的整合为开发信息技术和探索基本现象开辟了新的可能性。砷化衣(GAAS)是一种众所周知的材料,可以弥合光力学设备和光学增益介质的功能之间的差距。在这里,我们在实验上展示了高频GAAS光学谐振器,其带环类的靶向几何形状在该平台中是前所未有的。我们测量了高达3.4 GHz的机械模式,质量因子为4000(77 K),在电信波长下高达39 kHz的光力耦合速率。此外,我们研究了由于弹性各向异性及其对机械模式光谱的影响而引起的材料对称性断裂。最后,我们评估了机械损耗的温度依赖性,并证明了靶向靶向锚固损失的效率和各向异性弹性,这表明较低的温度运行可能允许机械质量因子超过$ 10^4 $。此类特征对于通过压电力学的有效光学力学,相干的微波转换以及III-V材料中高频振荡器的其他实现。
The integration of optomechanics and optoelectronics in a single device opens new possibilities for developing information technologies and exploring fundamental phenomena. Gallium arsenide (GaAs) is a well-known material that can bridge the gap between the functionalities of optomechanical devices and optical gain media. Here, we experimentally demonstrate a high-frequency GaAs optomechanical resonator with a ring-type bullseye geometry that is unprecedented in this platform. We measured mechanical modes up to 3.4 GHz with quality factors of 4000 (at 77 K) and optomechanical coupling rates up to 39 kHz at telecom wavelengths. Moreover, we investigated the material symmetry break due to elastic anisotropy and its impact on the mechanical mode spectrum. Finally, we assessed the temperature dependence of the mechanical losses and demonstrated the efficiency and anisotropy resilience of the bullseye anchor loss suppression, indicating that lower temperature operation may allow mechanical quality factors over $10^4$. Such characteristics are valuable for active optomechanics, coherent microwave-to-optics conversion via piezo-mechanics and other implementations of high-frequency oscillators in III-V materials.