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Spectroscopy and energetics of the acetylene molecule: dynamical complexity alongside structural simplicity

机译:乙炔分子的光谱学和高能学:动力学复杂性与结构简单性

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This article reviews laser-spectroscopic studies of the structure, energetics, and dynamics of processes involving small polyatomic molecules, particularly acetylene (ethyne, C2H2). The linear, centrosymmetric structure of C2H2 is deceptively simple, given that aspects of its optical spectra and dynamics have proved to be unusually complicated. The article focuses on the ground electronic state of C2H2, where rovibrational eigenstates are only approximately described in normal-mode terms, because intramolecular processes (such as anharmonic mixing, l-type resonances, and Coriolis coupling) introduce extensive global and local perturbations. These tend to spoil quantum numbers and symmetries that are well-defined in low-order basis states. Such effects within the rovibrational energy states of C2H2 are systematically characterized, together with dynamical descriptions in terms of polyad models and insight into photochemical or photophysical processes that may occur at high vibrational energies, without direct electronic excitation. Time-resolved optical double-resonance spectroscopy, probed by ultraviolet-laser-induced fluorescence and pumped by either infrared absorption or coherent Raman excitation, has proved particularly useful in exploring such effects in gas-phase C2H2; techniques of this type are discussed in detail, together with other laser-spectroscopic methods that provide complementary mechanistic information. A closely related topic concerns the area of optothermal molecular-beam spectroscopy, with particular emphasis on research by the late Roger E. Miller to whose memory this article is dedicated. Key publications by Miller and coworkers, in many of which C2H2 and its isotopomers play a central role, are reviewed. These cover the following themes: structure of molecular complexes and clusters, infrared predissociation spectra, rotational and vibrational energy transfer, differential scattering, photofragmentation of oriented complexes, superfluid-helium nano-droplet spectroscopy, aerosols formed in low-temperature diffusion cells, surface scattering experiments, optically selected mass spectrometry, and characterization of biomolecules. A unifying issue that links the assorted topics of this article is the role that intramolecular perturbations can play to enhance (and sometimes suppress) the efficiency of rovibrational energy transfer in colliding molecules or in molecular complexes and clusters; C2H2 and its isotopomers have been a rich source of insight in this regard, although they continue to pose challenges to our understanding.
机译:本文回顾了涉及小多原子分子,尤其是乙炔(乙炔,C2H2)的过程的结构,能量学和动力学的激光光谱研究。鉴于C2H2的光谱和动力学方面已证明异常复杂,C2H2的线性,中心对称结构看似简单。本文重点介绍C2H2的基态电子态,其中振动本征态仅以正常模式术语进行大致描述,因为分子内过程(例如非谐混合,l型共振和科里奥利耦合)会引入广泛的全局和局部扰动。这些往往会破坏在低阶基态中明确定义的量子数和对称性。系统地表征了C2H2的旋转振动能级内的这种影响,以及关于双元模型的动力学描述以及对在没有直接电子激发的情况下在高振动能量下可能发生的光化学或光物理过程的了解。时间分辨光学双共振光谱,由紫外激光诱导的荧光探测,并由红外吸收或相干拉曼激发泵浦,已被证明对探索气相C2H2中的这种作用特别有用。将详细讨论此类技术以及提供互补机械信息的其他激光光谱方法。一个密切相关的话题涉及光热分子束光谱学领域,特别着重已故的Roger E. Miller的研究。审查了米勒及其同事的重要出版物,其中许多文章都涉及C2H2及其同位异构体。这些主题包括以下主题:分子复合物和簇的结构,红外预离解谱,旋转和振动能量转移,微分散射,定向复合物的光致碎裂,超流体氦纳米液滴光谱法,低温扩散池中形成的气溶胶,表面散射实验,光学选择质谱和生物分子表征。链接本文各种主题的一个统一问题是,分子内扰动可发挥作用,以增强(有时抑制)碰撞分子或分子复合物和簇中旋转振动能量转移的效率; C2H2及其异构体在这方面一直是丰富的见识来源,尽管它们继续对我们的理解构成挑战。

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