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Ultraviolet photodissociation of gas-phase iron pentacarbonyl probed with ultrafast infrared spectroscopy

机译:超速率红外光谱探测气相铁戊羰基紫外线光阳离子

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摘要

It is well known that ultraviolet photoexcitation of iron pentacarbonyl results in rapid loss of carbonyl ligands leading to the formation of coordinatively unsaturated iron carbonyl compounds. We employ ultrafast mid-infrared transient absorption spectroscopy to probe the photodissociation dynamics of gas-phase iron pentacarbonyl following ultraviolet excitation at 265 and 199 nm. After photoexcitation at 265 nm, our results show evidence for sequential dissociation of iron pentacarbonyl to form iron tricarbonyl via a short-lived iron tetracarbonyl intermediate. Photodissociation at 199 nm results in the prompt production of Fe(CO)(3) within 0.25 ps via several energetically accessible pathways. An additional 15 ps time constant extracted from the data is tentatively assigned to intersystem crossing to the triplet manifold of iron tricarbonyl or iron dicarbonyl. Mechanisms for formation of iron tetracarbonyl, iron tricarbonyl, and iron dicarbonyl are proposed and theoretically validated with one-dimensional cuts through the potential energy surface as well as bond dissociation energies. Ground state calculations are computed at the CCSD(T) level of theory and excited states are computed with EOM-EE-CCSD(dT).
机译:众所周知,五羰基铁的紫外光激发会导致羰基配体的快速丢失,从而形成配位不饱和的羰基铁化合物。我们采用超快中红外瞬态吸收光谱法研究了265和199nm紫外激发下气相五羰基铁的光解动力学。在265 nm的光激发后,我们的结果显示了五羰基铁通过短寿命的四羰基铁中间体顺序解离形成三羰基铁的证据。在199nm处的光解导致在0.25ps内通过几个能量可及的途径迅速产生Fe(CO)(3)。从数据中提取的额外15 ps时间常数暂定分配给三羰基铁或二羰基铁的三重态流形的系统间交叉。提出了四羰基铁、三羰基铁和二羰基铁的形成机理,并通过势能面一维切割和键离解能进行了理论验证。基态计算在CCSD(T)理论水平上进行,激发态计算采用EOM-EE-CCSD(dT)。

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