Liu Li, Liao Shasha, Xue Wei, Yue Jin
Opt Express. 2020 Mar 2;28(5):6918-6928. doi: 10.1364/OE.384823.
We propose and experimentally demonstrate a continuously tunable all-optical microwave filter based on a photonic crystal (PC) L3 cavity. Due to the small cavity mode volume and prominent optical properties, the required power to arouse the cavity nonlinear effects is low as microwatt level. Moreover, the cavity resonance could be continuously shifted by finely adjusting the input powers. Therefore, under optical single sideband modulation, the frequency interval between the optical carrier and cavity resonance could be controllable. In this case, the central frequency of the microwave photonic filter (MPF) could be continuously tuned with low power consumption. To the best of our knowledge, the experimental tuning efficiency of 101.45 GHz/mW is a record for on-chip tunable all-optical microwave filters. With dominant features of all-optical control, ultra-high tuning efficiency (101.45 GHz/mW), large rejection ratios (48 dB) and compact footprint (100 µm), the proposed silicon nanocavity is competent to process microwave signals, which has many useful applications in on-chip energy-efficient microwave photonic systems.
我们提出并通过实验证明了一种基于光子晶体(PC)L3 腔的连续可调谐全光微波滤波器。由于腔模体积小且光学特性突出,激发腔非线性效应所需的功率低至微瓦级。此外,通过精细调整输入功率,腔共振可以连续移动。因此,在光单边带调制下,光载波与腔共振之间的频率间隔是可控的。在这种情况下,微波光子滤波器(MPF)的中心频率可以在低功耗下连续调谐。据我们所知,101.45 GHz/mW 的实验调谐效率是片上可调谐全光微波滤波器的记录。所提出的硅纳米腔具有全光控制、超高调谐效率(101.45 GHz/mW)、大抑制比(48 dB)和紧凑尺寸(100 µm)等主要特点,能够处理微波信号,在片上节能微波光子系统中有许多有用的应用。