Sarabalis Christopher J, Van Laer Raphaël, Safavi-Naeini Amir H
Opt Express. 2018 Aug 20;26(17):22075-22099. doi: 10.1364/OE.26.022075.
Rapid and low-power control over the direction of a radiating light field is a major challenge in photonics and a key enabling technology for emerging sensors and free-space communication links. Current approaches based on bulky motorized components are limited by their high cost and power consumption, while on-chip optical phased arrays face challenges in scaling and programmability. Here, we propose a solid-state approach to beam-steering using optomechanical antennas. We combine recent progress in simultaneous control of optical and mechanical waves with remarkable advances in on-chip optical phased arrays to enable low-power and full two-dimensional beam-steering of monochromatic light. We present a design of a silicon photonic system made of photonic-phononic waveguides that achieves 44° field of view with 880 resolvable spots by sweeping the mechanical wavelength with about a milliwatt of mechanical power. Using mechanical waves as nonreciprocal, active gratings allows us to quickly reconfigure the beam direction, beam shape, and the number of beams. It also enables us to distinguish between light that we send and receive.
对辐射光场方向进行快速且低功耗的控制是光子学领域的一项重大挑战,也是新兴传感器和自由空间通信链路的关键 enabling 技术。当前基于笨重电动部件的方法受到高成本和高功耗的限制,而片上光学相控阵在规模扩展和可编程性方面面临挑战。在此,我们提出一种使用光机械天线进行光束转向的固态方法。我们将光学和机械波同步控制方面的最新进展与片上光学相控阵的显著进步相结合,以实现单色光的低功耗和全二维光束转向。我们展示了一种由光子 - 声子波导制成的硅光子系统设计,通过用约一毫瓦的机械功率扫描机械波长,该系统实现了 44°的视场和 880 个可分辨光斑。将机械波用作非互易有源光栅使我们能够快速重新配置光束方向、光束形状和光束数量。它还使我们能够区分发送和接收的光。