Bekker Christiaan, Baker Christopher G, Kalra Rachpon, Cheng Han-Hao, Li Bei-Bei, Prakash Varun, Bowen Warwick P
Opt Express. 2018 Dec 24;26(26):33649-33670. doi: 10.1364/OE.26.033649.
Reconfigurable photonic circuits have applications ranging from next-generation computer architectures to quantum networks, coherent radar and optical metamaterials. Here, we demonstrate an on-chip high quality microcavity with resonances that can be electrically tuned across a full free spectral range (FSR). FSR tuning allows resonance with any source or emitter, or between any number of networked microcavities. We achieve it by integrating nanoelectronic actuation with strong optomechanical interactions that create a highly geometry-dependent effective refractive index. This allows low voltages and sub-nanowatt power consumption. We demonstrate a basic reconfigurable photonic network, bringing the microcavity into resonance with an arbitrary mode of a microtoroidal optical cavity across a telecommunications fibre link. Our results have applications beyond photonic circuits, including widely tuneable integrated lasers, reconfigurable optical filters for telecommunications and astronomy, and on-chip sensor networks.
可重构光子电路的应用范围涵盖从下一代计算机架构到量子网络、相干雷达和光学超材料等领域。在此,我们展示了一种片上高品质微腔,其共振可在整个自由光谱范围(FSR)内进行电调谐。FSR调谐允许与任何光源或发射器共振,或在任意数量的联网微腔之间共振。我们通过将纳米电子驱动与强大的光机械相互作用相结合来实现这一点,这种相互作用会产生高度依赖几何形状的有效折射率。这使得能够实现低电压和亚纳瓦的功耗。我们展示了一个基本的可重构光子网络,通过电信光纤链路使微腔与微环光学腔的任意模式共振。我们的成果在光子电路之外也有应用,包括广泛可调谐的集成激光器、用于电信和天文学的可重构光学滤波器以及片上传感器网络。