论文标题

硅光学腔中的表面声波激光

Surface acoustic wave lasing in a silicon optomechanical cavity

论文作者

Zhang, J., Nuño-Ruano, P., Roux, X. Le, Montesinos-Ballester, M., Marris-Morini, D., Cassan, E., Vivien, L., Lanzillotti-Kimura, N. D., Alonso-Ramos, C.

论文摘要

集成的光力学腔是接口机械运动和引导光学模式的一种有希望的手段。最先进的演示依赖于在微米尺度区域紧密限制的光学模式和机械模式来实现强大的光力耦合。但是,需要紧密的光学限制和一般使用悬挂设备阻碍与外部设备的交互作用,从而限制了实施复杂电路的潜力。在这里,我们提出并演示了一种新的方法,用于耦合自由传播的表面波波(锯)和引导光学模式的新方法。该腔是由具有亚波长度分离的硅纳米柱的周期性阵列形成的,该硅在硅在绝缘子底物中实现。光学泵送产生强大的辐射压力,可驱动支柱的谐波振动,定期变形二氧化硅,并激发锯。锯的传播变形在空腔周期中,调节共振波长以关闭光学耦合环。基于这个概念,我们在室温和光泵功率低至1兆瓦的室温和环境条件下实验表明了声子激光器。我们还展示了级联这一过程的可能性,实现了具有30多个谐波线的频率梳子产生。这些结果为在集成波导和SAW之间实现强大的双向耦合打开了一条新的途径,具有在量子和经典域中广泛应用的巨大潜力。

Integrated optomechanical cavities stand as a promising means to interface mechanical motion and guided optical modes. State-of-the-art demonstrations rely on optical and mechanical modes tightly confined of in micron-scale areas to achieve strong optomechanical coupling. However, the need for tight optomechanical confinement and the general use of suspended devices hinders interaction with external devices, limiting the potential for the implementation of complex circuits. Here, we propose and demonstrate a new approach for optomechanical cavities coupling free-propagating surface acoustic waves (SAWs) and guided optical modes. The cavity is formed by a periodic array of silicon nanopillars with subwavelength separation, implemented in silicon-on-insulator substrate. Optical pumping yields a strong radiation pressure that drives the harmonic vibration of the pillars, periodically deforming the silica under-cladding and exciting the SAW. The propagation of the SAW deforms the cavity period, modulating the resonance wavelength to close the optomechanical coupling loop. Based on this concept, we experimentally demonstrate a phonon laser at room temperature and ambient conditions with optical pump power as low as 1 mW. We also show the possibility to cascade this process, achieving a frequency comb generation with more than 30 harmonic lines. These results open a new path to achieve strong bidirectional coupling between integrated waveguides and SAW, with a great potential for a wide range of applications in quantum and classical domains.

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