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Density Functional Study of the Photodissociation of Mn2(CO)10

机译:Mn2(CO)10光解离的密度泛函研究

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摘要

Potential energy curves (PECs) have been calculated for a number of excited states of Mn2(CO)10, along the Mn−Mn bond dissociation coordinate and along Mn−COax and Mn−COeq coordinates, in order to understand why irradiation into the σ → σ* band does not only lead to Mn−Mn bond breaking but also to Mn−CO dissociation. Mn−Mn bond homolysis can straightforwardly occur along the dissociative σ → σ* 3B2 PEC. The σ → σ* excited state is not itself Mn−CO dissociative. CO dissociation occurs since PECs that correspond at equilibrium geometry to dπ* → σ* 1,3E1 excited states (nearly degenerate with the σ → σ* excited state) are Mn−COax dissociative (both 1E1 and 3E1, 1,3E in C4v) or Mn−COeq dissociative (only just, and only the b3A‘ component (in Cs) of 3E1). The Mn−CO dissociative character has been traced to the precipitous lowering of the initially high-lying Mn−CO σ-antibonding (3d(eg)-like) orbitals upon Mn−CO bond lengthening, making them considerably lower than σ* in Mn2(CO)9. Excitations to these orbitals (the ligand-field (LF) excitations) are at high energy in Mn2(CO)10, much higher than the σ → σ* and dπ* → σ* excitations. However, the energy of these LF excited states very rapidly goes down upon Mn−CO bond lengthening, they cross the σ → σ* and dπ* → σ* excited states, and the energy lowering of the LF excitation energy in Mn2(CO)9 with respect to the lowest excitation energies in Mn2(CO)10, to 1,3B2 σ → σ* and 1,3E1 dπ* → σ*, provides the energy for the Mn−CO bond breaking.
机译:为了理解为什么辐照到σ中,对Mn2(CO)10的多个激发态沿Mn-Mn键解离坐标以及Mn-COax和Mn-COeq坐标计算了势能曲线(PEC)。 →σ*带不仅导致Mn-Mn键断裂,而且导致Mn-CO解离。 Mn-Mn键均质可沿解离σ→σ* 3B2 PEC直接发生。 σ→σ*激发态本身不是Mn-CO解离的。因为在平衡几何上对应于dπ*→σ* 1,3E1激发态(几乎由σ→σ*激发态简并)的PEC是Mn-COax分解(C4v中的1E1和3E1,1,3E),所以发生CO解离或Mn-COeq解离性(仅3E1的b3A'成分(以Cs为单位))。 Mn-CO的解离特性可追溯到Mn-CO键加长后,最初位于高位的Mn-COσ-抗键(3d(例如)状)轨道急剧下降,使其大大低于Mn2中的σ* (CO)9。这些轨道的激发(配体场(LF)激发)在Mn2(CO)10中处于高能状态,远高于σ→σ*和dπ*→σ*激发。但是,这些LF激发态的能量随着Mn-CO键加长而迅速下降,它们穿过σ→σ*和dπ*→σ*激发态,并且LF2中的LF激发能的能量降低相对于Mn2(CO)10中的最低激发能,图9所示的能量为1,3B2σ→σ*和1,3E1dπ*→σ*,为Mn-CO键断裂提供了能量。

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