Schönhuber S, Bachelard N, Limbacher B, Kainz M A, Andrews A M, Detz H, Strasser G, Darmo J, Rotter S, Unterrainer K
Photonics Institute, TU Wien, 1040, Vienna, Austria.
Center for Micro- and Nanostructures, TU Wien, 1040, Vienna, Austria.
Nat Commun. 2020 Nov 2;11(1):5530. doi: 10.1038/s41467-020-19305-8.
Spectral fingerprints of molecules are mostly accessible in the terahertz (THz) and mid-infrared ranges, such that efficient molecular-detection technologies rely on broadband coherent light sources at such frequencies. If THz Quantum Cascade Lasers can achieve octave-spanning bandwidth, their tunability and wavelength selectivity are often constrained by the geometry of their cavity. Here we introduce an adaptive control scheme for the generation of THz light in Quantum Cascade Random Lasers, whose emission spectra are reshaped by applying an optical field that restructures the permittivity of the active medium. Using a spatial light modulator combined with an optimization procedure, a beam in the near infrared (NIR) is spatially patterned to transform an initially multi-mode THz random laser into a tunable single-mode source. Moreover, we show that local NIR illumination can be used to spatially sense complex near-field interactions amongst modes. Our approach provides access to new degrees of freedom that can be harnessed to create broadly-tunable sources with interesting potential for applications like self-referenced spectroscopy.
分子的光谱指纹大多可在太赫兹(THz)和中红外波段获取,因此高效的分子检测技术依赖于该频率范围内的宽带相干光源。如果太赫兹量子级联激光器能够实现倍频程跨度带宽,其可调谐性和波长选择性通常会受到其腔结构的限制。在此,我们介绍一种用于在量子级联随机激光器中产生太赫兹光的自适应控制方案,通过施加一个能重构有源介质介电常数的光场来重塑其发射光谱。利用空间光调制器结合优化程序,对近红外(NIR)光束进行空间图案化,将最初的多模太赫兹随机激光器转变为可调谐单模源。此外,我们表明局部近红外照明可用于空间感知模式之间复杂的近场相互作用。我们的方法提供了新的自由度,可用于创建具有广泛可调谐性的光源,在诸如自参考光谱学等应用中具有有趣的潜力。