Simon Aude, Joblin Christine
Centre d'Etude Spatiale des Rayonnements, UMR 5187, Université Toulouse 3, Centre National de la Recherche Scientifique, 9 Av. du Colonel Roche, 31028 Toulouse Cedex 4, France.
J Phys Chem A. 2007 Oct 4;111(39):9745-55. doi: 10.1021/jp072506a. Epub 2007 Sep 12.
This paper reports extensive calculations on the structural, thermodynamic, and mid-infrared spectroscopic properties of neutral and cationic model iron-polycyclic aromatic hydrocarbon (PAH) complexes of astrophysical interest for three PAHs of increasing size, namely, naphthalene (C10H8), pyrene (C16H10), and coronene (C24H12). Geometry optimizations and frequency calculations were performed using hybrid Hartree-Fock/density functional theory (DFT) methods. The use of DFT methods is mandatory in terms of computational cost and efficiency to describe the electronic and vibrational structures of such large organometallic unsaturated species that present several low-energy isomers of different structures and electronic and spin states. The calculated structures for the low-energy isomers of the model Fe-PAH and Fe-PAH+ complexes are presented and discussed. Iron-PAH binding energies are extracted, and the consequences of the coordination of iron on the infrared spectra of neutral and cationic PAHs are shown with systematic effects on band intensities and positions being demonstrated. The first results are discussed in terms of astrophysical implications. This work is the first step of an ongoing effort in our group to understand the photophysics and spectroscopy of iron-PAH complexes in the conditions of the interstellar medium using a synergy between observations, laboratory experiments, and theory.
本文报道了对具有天体物理学意义的中性和阳离子型铁 - 多环芳烃(PAH)配合物的结构、热力学和中红外光谱性质进行的广泛计算,研究对象为三种尺寸逐渐增大的PAH,即萘(C10H8)、芘(C16H10)和蔻(C24H12)。使用混合Hartree - Fock/密度泛函理论(DFT)方法进行几何结构优化和频率计算。考虑到计算成本和效率,对于描述这类具有不同结构、电子和自旋状态的多种低能量异构体的大型有机金属不饱和物种的电子和振动结构而言,使用DFT方法是必不可少的。文中给出并讨论了模型Fe - PAH和Fe - PAH⁺配合物低能量异构体的计算结构。提取了铁 - PAH结合能,并展示了铁配位对中性和阳离子型PAH红外光谱的影响,证明了其对谱带强度和位置的系统效应。从天体物理学意义的角度对首批结果进行了讨论。这项工作是我们团队正在进行的一项努力的第一步,旨在通过观测、实验室实验和理论之间的协同作用,了解星际介质条件下铁 - PAH配合物的光物理和光谱学。