论文标题

芯片尺度红外频率梳的相位分析和全相控制

Phase analysis and full phase control of chip-scale infrared frequency combs

论文作者

Consolino, Luigi, Cappelli, Francesco, Cancio, Pablo, Galli, Iacopo, Mazzotti, Davide, Bartalini, Saverio, De Natale, Paolo

论文摘要

The road towards the realization of quantum cascade laser (QCL) frequency combs (QCL-combs) has undoubtedly attracted ubiquitous attention from the scientific community, as these devices promise to deliver all-in-one (i.e. a single, miniature, active devices) frequency comb (FC) synthesizers in a range as wide as QCL spectral coverage itself (from about 4 microns to the THz range), with the unique possibility to根据带结构工程量身定制光谱发射。由于这些原因,已经花费了巨大的努力来表征四波混合的多频设备的排放,旨在抓住其功能机制。但是,到目前为止,所有报道的研究都集中在自由运行的QCL-COMB上,避免了将FC变成有用的计量工具的基本成分。我们第一次将模式锁定的多频QCL发射器与全相稳定和对两个FC自由度的独立控制结合在一起。同时,我们引入了梳子发射(面)技术的傅立叶变换分析,用于测量和同时监测QCL炸弹模式的傅立叶相。量身定制的排放,微型,电动,中红外/THZ的覆盖范围,完全稳定且完全控制的QCL-COMB的演示最终使这项技术用于计量级应用,触发了一个新的科学飞跃,影响了从日常生活到Frontier-Research的几个领域。

The road towards the realization of quantum cascade laser (QCL) frequency combs (QCL-combs) has undoubtedly attracted ubiquitous attention from the scientific community, as these devices promise to deliver all-in-one (i.e. a single, miniature, active devices) frequency comb (FC) synthesizers in a range as wide as QCL spectral coverage itself (from about 4 microns to the THz range), with the unique possibility to tailor their spectral emission by band structure engineering. For these reasons, vigorous efforts have been spent to characterize the emission of four-wave-mixing multi-frequency devices, aiming to seize their functioning mechanisms. However, up to now, all the reported studies focused on free-running QCL-combs, eluding the fundamental ingredient that turns a FC into a useful metrological tool. For the first time we have combined mode-locked multi-frequency QCL emitters with full phase stabilization and independent control of the two FC degrees of freedom. At the same time, we have introduced the Fourier transform analysis of comb emission (FACE) technique, used for measuring and simultaneously monitoring the Fourier phases of the QCL-comb modes. The demonstration of tailored-emission, miniaturized, electrically-driven, mid-infrared/THz coverage, fully-stabilized and fully-controlled QCL-combs finally enables this technology for metrological-grade applications triggering a new scientific leap affecting several fields ranging from everyday life to frontier-research.

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