Moille Gregory, Perez Edgar F, Stone Jordan R, Rao Ashutosh, Lu Xiyuan, Rahman Tahmid Sami, Chembo Yanne K, Srinivasan Kartik
Joint Quantum Institute, NIST/University of Maryland, College Park, MD, USA.
Microsystems and Nanotechnology Division, National Institute of Standards and Technology, Gaithersburg, MD, USA.
Nat Commun. 2021 Dec 14;12(1):7275. doi: 10.1038/s41467-021-27469-0.
Broadband and low-noise microresonator frequency combs (microcombs) are critical for deployable optical frequency measurements. Here we expand the bandwidth of a microcomb far beyond its anomalous dispersion region on both sides of its spectrum through spectral translation mediated by mixing of a dissipative Kerr soliton and a secondary pump. We introduce the concept of synthetic dispersion to qualitatively capture the system's key physical behavior, in which the second pump enables spectral translation through four-wave mixing Bragg scattering. Experimentally, we pump a silicon nitride microring at 1063 nm and 1557 nm to enable soliton spectral translation, resulting in a total bandwidth of 1.6 octaves (137-407 THz). We examine the comb's low-noise characteristics, through heterodyne beat note measurements across its spectrum, measurements of the comb tooth spacing in its primary and spectrally translated portions, and their relative noise. These ultra-broadband microcombs provide new opportunities for optical frequency synthesis, optical atomic clocks, and reaching previously unattainable wavelengths.
宽带低噪声微谐振器频率梳(微频率梳)对于可部署光学频率测量至关重要。在此,我们通过耗散克尔孤子与二次泵浦混合介导的频谱平移,将微频率梳的带宽扩展到其频谱两侧异常色散区域之外。我们引入合成色散概念以定性捕捉系统的关键物理行为,其中二次泵浦通过四波混频布拉格散射实现频谱平移。实验中,我们在1063纳米和1557纳米处泵浦氮化硅微环以实现孤子频谱平移,从而得到1.6倍频程(137 - 407太赫兹)的总带宽。我们通过对其整个频谱进行外差拍频测量、测量其主频谱部分和频谱平移部分的梳齿间距及其相对噪声,来研究频率梳的低噪声特性。这些超宽带微频率梳为光学频率合成、光学原子钟以及实现此前无法达到的波长提供了新机遇。