Jusko Pavol, Brünken Sandra, Asvany Oskar, Thorwirth Sven, Stoffels Alexander, van der Meer Lex, Berden Giel, Redlich Britta, Oomens Jos, Schlemmer Stephan
I. Physikalisches Institut, Universität zu Köln, Zülpicher Str. 77, 50937 Köln, Germany.
Radboud University, Institute for Molecules and Materials, FELIX Laboratory, Toernooiveld 7c, 6525 ED Nijmegen, The Netherlands.
Faraday Discuss. 2019 Jul 1;217:172-202. doi: 10.1039/c8fd00225h. Epub 2019 May 7.
The combination of a 4 K 22-pole ion trap instrument, FELion, with the widely tunable free electron lasers at the FELIX Laboratory is described in detail. It allows for wide-range infrared vibrational spectroscopy of molecular ions. In this study, the apparatus is used for infrared vibrational predissociation (IR-PD) measurements of the simple alcohol cations of methanol and ethanol as well as their protonated forms. Spectra are taken by tagging the cold molecular ions with He atoms. The infrared spectrum of protonated methanol is recorded for the first time, and the wavelength coverage for all other species is substantially extended. The bands of all spectra are analysed by comparison to ab initio calculation results at different levels of theory. Vibrational bands of different isomers and conformers (rotamers) are discussed and identified in the experimental spectra. Besides the measurement of IR-PD spectra, the method of infrared multiple photon dissociation IR-MPD is applied for some cases. Spectral narrowing due to the cold environment is observed and rotational band contours are simulated. This will help in identifying more complex species using the IR-MPD method in future measurements. Overall the IR-PD spectra reveal more bands than are observed for the IR-MPD spectra. In particular, many new bands are observed in the fingerprint region. Depletion saturation of the finite number of trapped ions is observed for the IR-PD spectra of the ethanol cation and the presence of only one isomeric species is concluded. This special feature of ion trapping spectroscopy may be used in future studies for addressing specific isomers or cleaning the ion cloud from specific isomers or conformers. In addition, the results of this study can be used as a basis to obtain high-resolution infrared vibrational and THz rotational spectra of alcohol ions in order to detect them in space.
详细描述了4K 22极离子阱仪器FELion与FELIX实验室中广泛可调谐的自由电子激光的结合。它允许对分子离子进行宽范围的红外振动光谱分析。在本研究中,该仪器用于甲醇和乙醇的简单醇阳离子及其质子化形式的红外振动预解离(IR-PD)测量。通过用氦原子标记冷分子离子来获取光谱。首次记录了质子化甲醇的红外光谱,并且所有其他物种的波长覆盖范围得到了大幅扩展。通过与不同理论水平的从头算计算结果进行比较,分析了所有光谱的谱带。在实验光谱中讨论并识别了不同异构体和构象体(旋转异构体)的振动谱带。除了测量IR-PD光谱外,在某些情况下还应用了红外多光子解离(IR-MPD)方法。观察到由于冷环境导致的光谱变窄,并模拟了转动谱带轮廓。这将有助于在未来的测量中使用IR-MPD方法识别更复杂的物种。总体而言,IR-PD光谱揭示的谱带比IR-MPD光谱中观察到的更多。特别是,在指纹区域观察到许多新谱带。在乙醇阳离子的IR-PD光谱中观察到有限数量的捕获离子的耗尽饱和,并得出仅存在一种异构体的结论。离子阱光谱学的这一特殊特性可在未来的研究中用于处理特定异构体或从特定异构体或构象体中清除离子云。此外,本研究的结果可作为获取醇离子的高分辨率红外振动光谱和太赫兹转动光谱以在太空中检测它们的基础。