论文标题
集成的涡旋孤子微瘤
Integrated vortex soliton microcombs
论文作者
论文摘要
频率和轨道角动量(OAM)是光的独立物理特性,它们都提供了无限程度的自由度。但是,由于所需的光学系统的复杂性随着OAM维度而大大扩展,创建,处理和检测高维的OAM状态一直是一个枢纽和持久的任务。另一方面,在频域中开发了成熟的工具箱(例如光学频率梳子),以实现出色的忠诚度的并行测量。在这里,我们将两个维度关联到光子芯片上的等距梳状结构中。在非线性微孔子中形成的耗散孤子通过雕刻的角光栅发出,每个梳子线都带有不同的OAM。 OAM和频率之间的一对一对应关系表现出在18.5 dB以上的最新灭绝比,从而实现了光学涡流的精确光谱。展示的涡旋索尼顿微型群岛提供了在空间和频域中多路复用的连贯的光源,具有建立高维结构光的新型手术的潜力。
The frequency and orbital angular momentum (OAM) are independent physical properties of light that both offer unbounded degrees of freedom. However, creating, processing, and detecting high-dimensional OAM states have been a pivot and long-lasting task, as the complexity of the required optical systems scales up drastically with the OAM dimension. On the other hand, mature toolboxes -- such as optical frequency combs -- have been developed in the frequency domain for parallel measurements with excellent fidelity. Here we correlate the two dimensions into an equidistant comb structure on a photonic chip. Dissipative optical solitons formed in a nonlinear microresonator are emitted through the engraved angular gratings with each comb line carrying distinct OAM. Such one-to-one correspondence between the OAM and frequencies manifests state-of-the-art extinction ratios over 18.5 dB, enabling precision spectroscopy of optical vortices. The demonstrated vortex soliton microcombs provide coherent light sources that are multiplexed in the spatial and frequency domain, having the potential to establish a new modus operandi of high-dimensional structured light.