硫代甲醛同位素物H$_2$CS和H$_2$C$^{34}$S在四种相互作用激振状态下的旋转光谱及硫代烯H$_2$CCS的旋转光谱

Holger S. P. Müller, Atsuko Maeda, Frank Lewen, Stephan Schlemmer, Ivan R. Medvedev, Eric Herbst
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引用次数: 0

摘要

通过热解反应对110 ~ 377 GHz星际分子甲醛的旋转光谱进行了研究,发现除了先前报道的许多硫代甲醛同位素物在基态的吸收谱线和几种副产物的吸收谱线外,还有许多可归属于H$_2$CS和H$_2$C$^{34}$S的最低四个激发振动态的吸收谱线。在571 ~ 1386 GHz之间的选定区域,记录了H$_2$CS最低四个激发态的额外跃迁。轻微到强烈的科里奥利相互作用发生在所有四个振动状态之间,除了两个最高的状态,因为它们都是完全对称的振动。我们对H$_2$CS和H$_2$C$^{34}$S的旋转数据进行了基态和四种相互作用态的综合分析。在两个独立的分析中,H$_2$CS数据补充了两组高结果IR数据。首次将$v_2 = 1$态纳入到H$_2$CS低洼基态的科里奥利相互作用分析中,这大大提高了拟合质量。我们进一步扩展了基振状态下硫烯跃迁频率在$J$上的赋值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rotational spectroscopy of the thioformaldehyde isotopologues H$_2$CS and H$_2$C$^{34}$S in four interacting excited vibrational states and an account on the rotational spectrum of thioketene, H$_2$CCS
An investigation of the rotational spectrum of the interstellar molecule thioformaldehyde between 110 and 377 GHz through a pyrolysis reaction revealed a multitude of absorption lines assignable to H$_2$CS and H$_2$C$^{34}$S in their lowest four excited vibrational states besides lines of numerous thioformaldehyde isotopologues in their ground vibrational states reported earlier as well as lines pertaining to several by-products. Additional transitions of H$_2$CS in its lowest four excited vibrational states were recorded in selected regions between 571 and 1386 GHz. Slight to strong Coriolis interactions occur between all four vibrational states with the exception of the two highest lying states because both are totally symmetric vibrations. We present combined analyses of the ground and the four interacting states for our rotational data of H$_2$CS and H$_2$C$^{34}$S. The H$_2$CS data were supplemented with two sets of high-resultion IR data in two separate analyses. The $v_2 = 1$ state has been included in analyses of Coriolis interactions of low-lying fundamental states of H$_2$CS for the first time and this improved the quality of the fits substantially. We extended furthermore assignments in $J$ of transition frequencies of thioketene in its ground vibrational state.
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