Hearne T S, Mammez M-H, Mammez D, Martin-Drumel M-A, Roy P, Pirali O, Eliet S, Barbieri S, Hindle F, Mouret G, Lampin J-F
Opt Express. 2022 Feb 28;30(5):7372-7382. doi: 10.1364/OE.448147.
Synchrotron radiation (SR) has proven to be an invaluable contributor to the field of molecular spectroscopy, particularly in the terahertz region (1-10 THz) where its bright and broadband properties are currently unmatched by laboratory sources. However, measurements using SR are currently limited to a resolution of around 30 MHz, due to the limits of Fourier-transform infrared spectroscopy. To push the resolution limit further, we have developed a spectrometer based on heterodyne mixing of SR with a newly available THz molecular laser, which can operate at frequencies ranging from 1 to 5.5 THz. This spectrometer can record at a resolution of 80 kHz, with 5 GHz of bandwidth around each molecular laser frequency, making it the first SR-based instrument capable of sub-MHz, Doppler-limited spectroscopy across this wide range. This allows closely spaced spectral features, such as the effects of internal dynamics and fine angular momentum couplings, to be observed. Furthermore, mixing of the molecular laser with a THz comb is demonstrated, which will enable extremely precise determinations of molecular transition frequencies.
同步辐射(SR)已被证明是分子光谱领域的宝贵贡献者,特别是在太赫兹区域(1 - 10太赫兹),其明亮和宽带特性目前是实验室光源无法比拟的。然而,由于傅里叶变换红外光谱的限制,目前使用SR进行的测量分辨率限制在约30兆赫兹左右。为了进一步突破分辨率限制,我们开发了一种光谱仪,该光谱仪基于SR与新可用的太赫兹分子激光器的外差混频,该激光器可在1至5.5太赫兹的频率范围内运行。这种光谱仪能够以80千赫兹的分辨率进行记录,在每个分子激光频率周围具有5吉赫兹的带宽,使其成为第一台基于SR的仪器,能够在如此宽的范围内进行亚兆赫兹、多普勒极限光谱分析。这使得能够观察到间隔紧密的光谱特征,例如内部动力学和精细角动量耦合的影响。此外,还展示了分子激光器与太赫兹频率梳的混频,这将能够极其精确地确定分子跃迁频率。