Olejnik Artur, Jóźwiak Hubert, Gancewski Maciej, Quintas-Sánchez Ernesto, Dawes Richard, Wcisło Piotr
Institute of Physics, Faculty of Physics, Astronomy and Informatics, Nicolaus Copernicus University in Toruń, Grudziądzka 5, 87-100 Toruń, Poland.
Department of Chemistry, Missouri University of Science and Technology, Rolla, Missouri 65409-0010, USA.
J Chem Phys. 2023 Oct 7;159(13). doi: 10.1063/5.0169968.
The remote sensing of abundance and properties of HCl-the main atmospheric reservoir of Cl atoms that directly participate in ozone depletion-is important for monitoring the partitioning of chlorine between "ozone-depleting" and "reservoir" species. Such remote studies require knowledge of the shapes of molecular resonances of HCl, which are perturbed by collisions with the molecules of the surrounding air. In this work, we report the first fully quantum calculations of collisional perturbations of the shape of a pure rotational line in H35Cl perturbed by an air-relevant molecule [as the first model system we choose the R(0) line in HCl perturbed by O2]. The calculations are performed on our new highly accurate HCl(X1Σ+)-O2(X3Σg-) potential energy surface. In addition to pressure broadening and shift, we also determine their speed dependencies and the complex Dicke parameter. This gives important input to the community discussion on the physical meaning of the complex Dicke parameter and its relevance for atmospheric spectra (previously, the complex Dicke parameter for such systems was mainly determined from phenomenological fits to experimental spectra and the physical meaning of its value in that context is questionable). We also calculate the temperature dependence of the line shape parameters and obtain agreement with the available experimental data. We estimate the total combined uncertainties of our calculations at 2% relative root-mean-square error in the simulated line shape at 296 K. This result constitutes an important step toward computational population of spectroscopic databases with accurate ab initio line shape parameters for molecular systems of terrestrial atmospheric importance.
对参与臭氧消耗的氯原子的主要大气储存库——HCl的丰度和特性进行遥感,对于监测氯在“消耗臭氧”物种和“储存”物种之间的分配非常重要。此类遥感研究需要了解HCl分子共振的形状,而这些形状会受到与周围空气分子碰撞的干扰。在这项工作中,我们报告了首个对与空气相关分子(作为首个模型系统,我们选择O2对HCl的R(0)线的扰动)扰动下的H35Cl中纯转动线形状的碰撞扰动进行的全量子计算。计算是在我们新的高精度HCl(X1Σ+)-O2(X3Σg-)势能面上进行的。除了压力展宽和频移外,我们还确定了它们的速度依赖性和复狄克参数。这为关于复狄克参数的物理意义及其与大气光谱相关性的学界讨论提供了重要输入(此前,此类系统的复狄克参数主要通过对实验光谱的唯象拟合确定,其在此背景下的值的物理意义值得怀疑)。我们还计算了线形参数的温度依赖性,并与现有实验数据取得了一致。我们估计在296K时模拟线形中计算的总综合不确定性为相对均方根误差2%。这一结果朝着用具有地球大气重要性的分子系统的精确从头算线形参数计算光谱数据库迈出了重要一步。