论文标题
中红外超级肌肉超过400 000
Mid-infrared supermirrors with finesse exceeding 400 000
论文作者
论文摘要
对于痕量气体传感和精度光谱,融合低损坏镜的光腔对于路径长度和光强度增强是必不可少的。可见的和近红外(NIR)光谱区域中的光学干扰涂层已达到至少2份(ppm)的总光损失,使空腔技巧超过100万。但是,尽管有很大的科学兴趣,但中海(MIR)仍缺乏这种进步。在这里,我们证明了高性能mir镜子的显着突破,报告了底物转移的单晶干扰涂层,能够从200 000到40 000附近的40 000接近40 00 um,而光学损失过多(散射和吸收)低于5 ppm。在首次概念验证演示中,我们在通过腔长度标准化的线性腔环环光谱仪中实现了最低的噪声等效吸收。性能的实质性改善将解锁各种用于大气传输和环境科学的MIR应用,逃离排放的检测,工艺气体监测,呼吸气分析以及生物燃料燃料和塑料的验证。
For trace gas sensing and precision spectroscopy, optical cavities incorporating low-loss mirrors are indispensable for path length and optical intensity enhancement. Optical interference coatings in the visible and near-infrared (NIR) spectral regions have achieved total optical losses below 2 parts per million (ppm), enabling a cavity finesse in excess of 1 million. However, such advancements have been lacking in the mid-infrared (MIR), despite substantial scientific interest. Here, we demonstrate a significant breakthrough in high-performance MIR mirrors, reporting substrate-transferred single-crystal interference coatings capable of cavity finesse values from 200 000 to 400 000 near 4.5 um, with excess optical losses (scatter and absorption) below 5 ppm. In a first proof-of-concept demonstration, we achieve the lowest noise-equivalent absorption in a linear cavity ring-down spectrometer normalized by cavity length. This substantial improvement in performance will unlock a rich variety of MIR applications for atmospheric transport and environmental sciences, detection of fugitive emissions, process gas monitoring, breath-gas analysis, and verification of biogenic fuels and plastics.