Gaida Christian, Gebhardt Martin, Heuermann Tobias, Stutzki Fabian, Jauregui Cesar, Antonio-Lopez Jose, Schülzgen Axel, Amezcua-Correa Rodrigo, Tünnermann Andreas, Pupeza Ioachim, Limpert Jens
1Institute of Applied Physics, Abbe Center of Photonics, Friedrich-Schiller-Universität Jena, Albert-Einstein-Str. 15, 07745 Jena, Germany.
2Helmholtz-Institute Jena, Fröbelstieg 3, 07743 Jena, Germany.
Light Sci Appl. 2018 Nov 28;7:94. doi: 10.1038/s41377-018-0099-5. eCollection 2018.
The development of high-power, broadband sources of coherent mid-infrared radiation is currently the subject of intense research that is driven by a substantial number of existing and continuously emerging applications in medical diagnostics, spectroscopy, microscopy, and fundamental science. One of the major, long-standing challenges in improving the performance of these applications has been the construction of compact, broadband mid-infrared radiation sources, which unify the properties of high brightness and spatial and temporal coherence. Due to the lack of such radiation sources, several emerging applications can be addressed only with infrared (IR)-beamlines in large-scale synchrotron facilities, which are limited regarding user access and only partially fulfill these properties. Here, we present a table-top, broadband, coherent mid-infrared light source that provides brightness at an unprecedented level that supersedes that of synchrotrons in the wavelength range between 3.7 and 18 µm by several orders of magnitude. This result is enabled by a high-power, few-cycle Tm-doped fiber laser system, which is employed as a pump at 1.9 µm wavelength for intrapulse difference frequency generation (IPDFG). IPDFG intrinsically ensures the formation of carrier-envelope-phase stable pulses, which provide ideal prerequisites for state-of-the-art spectroscopy and microscopy.
高功率宽带相干中红外辐射源的开发是当前密集研究的主题,这是由医学诊断、光谱学、显微镜学和基础科学中大量现有及不断涌现的应用所驱动的。在提升这些应用性能方面,一个长期存在的主要挑战是构建紧凑的宽带中红外辐射源,该辐射源要兼具高亮度以及空间和时间相干性。由于缺乏此类辐射源,一些新兴应用只能通过大型同步加速器设施中的红外(IR)光束线来实现,而这些光束线在用户使用方面存在限制,并且只能部分满足这些特性。在此,我们展示了一种桌面型宽带相干中红外光源,其在3.7至18微米波长范围内提供了前所未有的亮度,比同步加速器的亮度高出几个数量级。这一成果得益于一个高功率、少周期掺铥光纤激光系统,该系统被用作1.9微米波长的泵浦源以进行脉冲内差频产生(IPDFG)。IPDFG本质上确保了载波包络相位稳定脉冲的形成,这为先进的光谱学和显微镜学提供了理想的先决条件。