Department of Chemistry, University of Illinois, Urbana, Illinois 61801, USA.
J Chem Phys. 2013 Oct 28;139(16):164201. doi: 10.1063/1.4825251.
We present a versatile new instrument capable of measuring rovibrational transition frequencies of molecular ions with sub-MHz accuracy and precision. A liquid-nitrogen cooled positive column discharge cell, which can produce large column densities of a wide variety of molecular ions, is probed with sub-Doppler spectroscopy enabled by a high-power optical parametric oscillator locked to a moderate finesse external cavity. Frequency modulation (heterodyne) spectroscopy is employed to reduce intensity fluctuations due to the cavity lock, and velocity modulation spectroscopy permits ion-neutral discrimination. The relatively narrow Lamb dips are precisely and accurately calibrated using an optical frequency comb. This method is completely general as it relies on the direct measurement of absorption or dispersion of rovibrational transitions. We expect that this new approach will open up many new possibilities: from providing new benchmarks for state-of-the-art ab initio calculations to supporting astronomical observations to helping assign congested spectra by combination differences. Herein, we describe the instrument in detail and demonstrate its performance by measuring ten R-branch transitions in the ν2 band of H3(+), two transitions in the ν1 band of HCO(+), and the first sub-Doppler transition of CH5(+).
我们提出了一种新的多功能仪器,能够以亚兆赫兹的精度和准确度测量分子离子的振转跃迁频率。使用高功率光参量振荡器锁定到中等精细度外腔实现亚多普勒光谱探测,该仪器采用液氦冷却的正柱放电池,能够产生各种分子离子的大柱密度。频率调制(外差)光谱用于减少由于腔锁定引起的强度波动,而速度调制光谱则允许离子-中性区分。相对较窄的 Lamb 凹陷使用光学频率梳进行精确和准确的校准。这种方法是完全通用的,因为它依赖于对振转跃迁的吸收或色散的直接测量。我们预计这种新方法将开辟许多新的可能性:从为最先进的从头算计算提供新的基准到支持天文观测,再到通过组合差帮助分配拥挤的光谱。本文详细描述了该仪器,并通过测量 H3(+)的 ν2 带中的十个 R 支跃迁、HCO(+)的 ν1 带中的两个跃迁以及 CH5(+)的第一个亚多普勒跃迁,展示了其性能。