Probing the electronic structure and ground state symmetry of gas phase C60+ via VUV photoionization and comparison with theory.

H. R. Hrodmarsson, M. Rapacioli, F. Spiegelman, Gustavo A Garcia, J. Bouwman, L. Nahon, H. Linnartz
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Abstract

Recently, some of us reviewed and studied the photoionization dynamics of C60 that are of great interest to the astrochemical community as four of the diffuse interstellar bands (DIBs) have been assigned to electronic transitions in the C60+ cation. Our previous analysis of the threshold photoelectron spectrum (TPES) of C60 [Hrodmarsson et al., Phys. Chem. Chem. Phys. 22, 13880-13892 (2020)] appeared to give indication of D3d ground state symmetry, in contrast to theoretical predictions of D5d symmetry. Here, we revisit our original measurements taking account of a previous theoretical spectrum presented in the work of Manini et al., Phys. Rev. Lett. 91(19), 196402 (2003), obtained within a vibronic model parametrized on density functional theory/local-density approximation electronic structure involving all hg Jahn-Teller active modes, which couple to the 2Hu components of the ground state of the C60+ cation. By reanalyzing our measured TPES of the ground state of the C60 Buckminsterfullerene, we find a striking resemblance to the theoretical spectrum calculated in the work of Manini et al., Phys. Rev. Lett. 91(19), 196402 (2003), and we provide assignments for many of the hg modes. In order to obtain deeper insights into the temperature effects and possible anharmonicity effects, we provide complementary modeling of the photoelectron spectrum via classical molecular dynamics (MD) involving density functional based tight binding (DFTB) computations of the electronic structure for both C60 and C60+. The validity of the DFTB modeling is first checked vs the IR spectra of both species which are well established from IR spectroscopic studies. To aid the interpretation of our measured TPES and the comparisons to the ab initio spectrum we showcase the complementarity of utilizing MD calculations to predict the PES evolution at high temperatures expected in our experiment. The comparison with the theoretical spectrum presented in the work of Manini et al., Phys. Rev. Lett. 91(19), 196402 (2003), furthermore, provides further evidence for a D5d symmetric ground state of the C60+ cation in the gas phase, in complement to IR spectroscopy in frozen noble gas matrices. This not only allows us to assign the first adiabatic ionization transition and thus determine the ionization energy of C60 with greater accuracy than has been achieved at 7.598 ± 0.005 eV, but we also assign the two lowest excited states (2E1u and 2E2u) which are visible in our TPES. Finally, we discuss the energetics of additional DIBs that could be assigned to C60+ in the future.
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通过紫外光离子化探测气相 C60+ 的电子结构和基态对称性并与理论进行比较。
最近,我们中的一些人回顾并研究了 C60 的光离子化动力学,这引起了天体化学界的极大兴趣,因为星际弥散带(DIB)中的四条被归结为 C60+ 阳离子的电子跃迁。我们之前对 C60 的阈值光电子能谱 (TPES) [Hrodmarsson 等人,Phys. Chem. Chem. Phys. 22, 13880-13892 (2020)]进行的分析似乎显示了 D3d 基态对称性,这与理论预测的 D5d 对称性截然不同。在此,我们重新审视了我们最初的测量结果,并考虑了马尼尼等人的工作中提出的理论光谱,Phys.91(19),196402(2003 年)中提出的理论光谱,该光谱是在以密度泛函理论/局域密度近似电子结构为参数的振子模型中获得的,涉及所有 hg Jahn-Teller 活跃模式,这些模式与 C60+ 阳离子基态的 2Hu 成分耦合。通过重新分析我们测得的 C60 白金汉烯基态 TPES,我们发现它与马尼尼等人的研究中计算出的理论光谱非常相似,Phys.91(19), 196402 (2003))中计算出的理论光谱惊人地相似,而且我们还提供了许多汞模式的赋值。为了更深入地了解温度效应和可能的非谐波效应,我们通过经典分子动力学 (MD) 对光电子能谱进行了补充建模,其中包括对 C60 和 C60+ 电子结构的基于密度泛函的紧密结合 (DFTB) 计算。DFTB 建模的有效性首先通过这两种物质的红外光谱进行检验,红外光谱研究已经证实了这一点。为了帮助解释我们测得的 TPES 以及与 ab initio 光谱的比较,我们展示了利用 MD 计算来预测我们实验中预期的高温下 PES 演化的互补性。与 Manini 等人的理论光谱的比较,见《Phys.91(19), 196402 (2003))中的理论光谱进行比较,进一步证明了气相中 C60+ 阳离子的 D5d 对称基态,补充了冷冻惰性气体矩阵中的红外光谱。这不仅使我们能够确定第一个绝热电离转变,从而更准确地确定 C60 的电离能(7.598 ± 0.005 eV),而且我们还确定了在 TPES 中可见的两个最低激发态(2E1u 和 2E2u)。最后,我们讨论了将来可能分配给 C60+ 的其他 DIB 的能量学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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