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金属羰基化合物的二维红外光谱学

Two-dimensional infrared spectroscopy of metal carbonyls.

机构信息

Department of Chemistry, University of Michigan, Ann Arbor, Michigan 48109, USA.

出版信息

Acc Chem Res. 2009 Sep 15;42(9):1395-404. doi: 10.1021/ar9000263.

Abstract

Metal carbonyl complexes offer both rich chemistry and complex vibrational spectroscopy due to strong coupling among the carbonyl stretches. Using two-dimensional infrared (2DIR) spectroscopy, it is possible to resolve the underlying transitions between vibrational energy levels, determine the orientations and relative magnitude of the corresponding transition dipole moments, measure the coupling between modes due to the anharmonicity of the potential, and probe energy redistribution among the modes as well as energy relaxation to other degrees of freedom. Measurements on metal carbonyl complexes have played, and continue to play, a crucial role in facilitating the development of 2DIR spectroscopy. These compounds have provided powerful demonstrations of the unique ability of 2DIR spectroscopy to resolve vibrational structure and dynamics in multimode systems. In addition, invaluable new information has been obtained on metal-to-ligand charge transfer processes, solvent-solute interactions and fluxionality. Since transition metal complexes play important roles in catalysis and as dye sensitizers for semiconductor nanoparticle photocatalysis, detailed probes of equilibrium and phototriggered dynamics should aid our understanding of these key catalytic systems. The richness and level of detail provided by the 2DIR spectra of metal carbonyl complexes turn them into extremely useful model systems for testing the accuracy of ab initio quantum chemical calculations. Accurate modeling of the 2DIR spectra of solvated metal carbonyl complexes requires the development of new theoretical and computational tools beyond those employed in the standard analysis of one-dimensional IR spectra, and represents an ongoing challenge to currently available computational methodologies. These challenges are further compounded by the increasing interest in triggered 2DIR experiments that involve nonequilibrium vibrational dynamics on multiple electronic potential surfaces. In this Account, we review the various metal carbonyl complexes studied via 2DIR spectroscopy and outline the theoretical approaches used in order to model the spectra. The capabilities of 2DIR spectroscopy and its interplay with modern ab initio calculations are demonstrated in the context of the metal carbonyl complex Mn(2)(CO)(10) recently studied in our lab. Continued progress in experimental implementation and theoretical analysis will enable transient 2D spectroscopy to provide structurally sensitive details of complex, highly interacting nonequilibrium processes that are central to diverse chemical transformations.

摘要

金属羰基配合物具有丰富的化学性质和复杂的振动光谱,这是由于羰基伸缩之间的强耦合作用。通过二维红外(2DIR)光谱,可以解析振动能级之间的基本跃迁,确定相应跃迁偶极矩的取向和相对大小,测量由于势能的非谐性引起的模式之间的耦合,并探测模式之间的能量再分配以及到其他自由度的能量弛豫。对金属羰基配合物的测量在促进 2DIR 光谱的发展中发挥了至关重要的作用,并将继续发挥作用。这些化合物为 2DIR 光谱在多模系统中解析振动结构和动力学的独特能力提供了有力的证明。此外,还获得了关于金属-配体电荷转移过程、溶剂-溶质相互作用和流动性的宝贵新信息。由于过渡金属配合物在催化和半导体纳米颗粒光催化中的染料敏化中起着重要作用,对平衡和光触发动力学的详细探测应该有助于我们理解这些关键催化系统。金属羰基配合物的 2DIR 光谱的丰富性和详细程度使它们成为测试从头算量子化学计算准确性的极其有用的模型系统。溶剂化金属羰基配合物的 2DIR 光谱的准确建模需要开发超越标准一维红外光谱分析中使用的新的理论和计算工具,并且代表了当前可用计算方法的持续挑战。这些挑战因对涉及多个电子势能表面的非平衡振动动力学的触发 2DIR 实验的日益关注而进一步加剧。在本报告中,我们回顾了通过 2DIR 光谱研究的各种金属羰基配合物,并概述了用于模拟光谱的理论方法。在我们最近在实验室中研究的 Mn(2)(CO)(10)金属羰基配合物的背景下,展示了 2DIR 光谱的功能及其与现代从头算计算的相互作用。实验实施和理论分析的持续进展将使瞬态 2D 光谱能够提供复杂的、高度相互作用的非平衡过程的结构敏感细节,这些过程是各种化学转化的核心。

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