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Ultrafast dynamics in iron tetracarbonyl olefin complexes investigated with two-dimensional vibrational spectroscopy

机译:二维振动光谱法研究四羰基铁铁络合物中的超快动力学

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The dynamics of iron tetracarbonyl olefin complexes has been investigated using two-dimensional infrared (2D-IR) spectroscopy. Cross peaks between all CO-stretching bands show that the CO-stretch modes are coupled, and from the cross-peak anisotropies we can confirm previous assignments of the absorption bands. From the pump-probe delay dependence of the diagonal peaks in the 2D-IR spectrum we obtain a correlation time of ~3 ps for the spectral fluctuations of the CO-stretch modes. We observe a multi-exponential pump-probe delay dependence of the cross-peak intensities, with rate constants ranging from 0.1 ps~(-1) to 0.6 ps~(-1). To determine whether this delay dependence originates from fluxionality of the complex or from intramolecular vibrational relaxation (IVR), we modulate the free-energy barrier of fluxional rearrangement by varying the pi-backbonding capacities of the olefin ligand in two iron tetracarbonyl olefin complexes: Fe(CO)4(cinnamic acid) and Fe(CO)4(dimethyl fumarate). Since the pi-backbonding strongly influences the rate of fluxionality, comparing the dynamics in the two complexes allows us to determine to what extent the observed dynamics is caused by fluxionality. We conclude that on the time scale of our experiments (up to 100 ps) the cross-peak dynamics in the iron complexes is determined by intramolecular vibrational energy relaxation. Hence, in contrast to previously investigated irontricarbonyl and ironpentacarbonyl complexes, iron tetracarbonyl olefin complexes exhibit no fluxionality on the picosecond time scale.
机译:铁四羰基烯烃络合物的动力学已使用二维红外(2D-IR)光谱进行了研究。所有CO拉伸带之间的交叉峰表明CO拉伸模式是耦合的,并且从交叉峰各向异性,我们可以确认吸收带的先前分配。从2D-IR光谱中对角峰的泵浦探针延迟相关性,我们得出CO拉伸模式光谱波动的相关时间为〜3 ps。我们观察到跨峰强度的多指数泵浦探针延迟依赖性,其速率常数范围为0.1 ps〜(-1)至0.6 ps〜(-1)。为了确定这种延迟依赖性是源自复合物的通量性还是源自分子内振动弛豫(IVR),我们通过改变两种铁四羰基铁络合物中铁配体的π背键结合能力来调节通量重排的自由能垒。 (CO)4(肉桂酸)和Fe(CO)4(富马酸二甲酯)。由于pi反向键强烈影响通量率,因此比较两个配合物中的动力学可以确定观察到的动力学在多大程度上由通量引起。我们得出的结论是,在我们实验的时间范围内(最高100 ps),铁配合物中的跨峰动力学是由分子内振动能弛豫确定的。因此,与先前研究的三羰基铁和五羰基铁配合物相反,四羰基铁烯烃配合物在皮秒级的时间范围内没有流动性。

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