Time and Frequency Division, National Institute of Standards and Technology, Boulder, CO, USA.
Department of Physics, University of Colorado, Boulder, CO, USA.
Nature. 2018 May;557(7703):81-85. doi: 10.1038/s41586-018-0065-7. Epub 2018 Apr 25.
Optical-frequency synthesizers, which generate frequency-stable light from a single microwave-frequency reference, are revolutionizing ultrafast science and metrology, but their size, power requirement and cost need to be reduced if they are to be more widely used. Integrated-photonics microchips can be used in high-coherence applications, such as data transmission , highly optimized physical sensors and harnessing quantum states , to lower cost and increase efficiency and portability. Here we describe a method for synthesizing the absolute frequency of a lightwave signal, using integrated photonics to create a phase-coherent microwave-to-optical link. We use a heterogeneously integrated III-V/silicon tunable laser, which is guided by nonlinear frequency combs fabricated on separate silicon chips and pumped by off-chip lasers. The laser frequency output of our optical-frequency synthesizer can be programmed by a microwave clock across 4 terahertz near 1,550 nanometres (the telecommunications C-band) with 1 hertz resolution. Our measurements verify that the output of the synthesizer is exceptionally stable across this region (synthesis error of 7.7 × 10 or below). Any application of an optical-frequency source could benefit from the high-precision optical synthesis presented here. Leveraging high-volume semiconductor processing built around advanced materials could allow such low-cost, low-power and compact integrated-photonics devices to be widely used.
光学频率合成器可从单一微波频率参考生成稳定频率的光,正在彻底改变超快科学和计量学,但如果要更广泛地应用,就需要减小其尺寸、功耗和成本。集成光子学微芯片可用于高相干应用,如数据传输、高度优化的物理传感器以及利用量子态,以降低成本、提高效率和便携性。在这里,我们描述了一种使用集成光子学来创建相位相干微波到光链路的方法,用于合成光波信号的绝对频率。我们使用了异质集成的 III-V/硅可调谐激光器,该激光器由在单独的硅芯片上制造的非线性频率梳引导,并由片外激光器泵浦。我们的光学频率合成器的激光频率输出可以通过微波时钟在 1550 纳米附近的 4 太赫兹范围内以 1 赫兹的分辨率进行编程,这个频率范围覆盖了电信 C 波段。我们的测量结果验证了在这个区域内,合成器的输出具有出色的稳定性(合成误差低于 7.7×10 或以下)。任何光学频率源的应用都可以受益于这里提出的高精度光学合成。利用围绕先进材料构建的大容量半导体处理,可以使这种低成本、低功耗和紧凑的集成光子学器件得到广泛应用。