论文标题
无弯曲的多小叶干涉仪光学芯片
Bend-Free Multiarm Interferometers on Optical Chips
论文作者
论文摘要
多组分干涉仪可以提高测量精度并为测量提供多参数能力。他们的实现需要多端梁拆分器,这是自由空间和集成光学器件的长期挑战。在这里,我们提出了一种适用于光学芯片实现的新型多派干涉仪。它们比标准方向耦合器架构的前瞻性优势:专门基于有限调制光子晶格的布局,可以实现任意数量的武器,平面体系结构和两个降低足迹的数量级。光子晶格的反设计通过将光传播限制在周期性模式中来促进。相应的干涉仪模型可预测最多$ 1/\ sqrt {n} $敏感性缩放,并使用武器$ n $的数量缩放。尽管提出的设计解决方案无处不在,但在低折射率和高折射率对比平台中都讨论了优势。最后,我们对分布式经典和量子测量中的干涉仪应用程序的可能性提供了前景。
Multiarm interferometers can enhance measurement precision and provide multiparameter capability to the measurement. Their realisation requires multiport beam splitters, which has been a long-standing challenge in free-space and integrated optics. Here, we propose a new type of multiport interferometers suitable for implementation on optical chips. Their prospective advantages over the standard directional-coupler architectures: an arbitrary number of arms, planar architecture and two orders of magnitude reduction in footprint, are achieved by the layout based exclusively on the finite modulated photonic lattices. The inverse design of photonic lattices is facilitated by restricting the light propagation to periodic patterns. The corresponding interferometer model predicts the maximum $1/\sqrt{N}$ sensitivity scaling with the number of arms $N$. While the presented design solutions are ubiquitous to all implementations, the advantages are discussed in both the low and high refractive-index contrast platforms. Finally, we provide an outlook on the possibilities for the interferometer applications in distributed classical and quantum measurements.