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Assessment of Density Functionals for the High-Spin/Low-Spin Energy Difference in the Low-Spin Iron(II) Tris(2,2'-bipyridine) Complex

机译:低旋铁(II)Tris(2,2'-联吡啶)配合物中高旋/低旋能量差的密度泛函评估

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摘要

In the iron(II) low-spin complex [Fe(bpy)3]2+, the zero-point energy difference between the 5T2g(t42ge2 g) high-spin and the 1A1g(t62g) low-spin states, ΔE0HL, is estimated to lie in the range of 2500–5000 cm-1. This estimate is based on the low-temperature dynamics of the high-spin→low-spin relaxation following the light-induced population of the high-spin state and on the assumption that the bond-length difference between the two states ΔrHL is equal to the average value of ≈0.2 Å, as found experimentally for the spin-crossover system. Calculations based on density functional theory (DFT) validate the structural assumption insofar as the low-spin-state optimised geometries are found to be in very good agreement with the experimental X-ray structure of the complex and the predicted high-spin geometries are all very close to one another for a whole series of common GGA (PB86, PW91, PBE, RPBE) and hybrid (B3LYP, B3LYP*, PBE1PBE) functionals. This confirmation of the structural assumption underlying the estimation of ΔE0HL from experimental relaxation rate constants permits us to use this value to assess the ability of the density functionals for the calculation of the energy difference between the HS and LS states. Since the different functionals give values from -1000 to 12000 cm-1, the comparison of the calculated values with the experimental estimate thus provides a stringent criterion for the performance of a given functional. Based on this comparison the RPBE and B3LYP* functionals give the best agreement with experiment.
机译:在铁(II)低自旋络合物[Fe(bpy)3] 2+中,5T2g(t42ge2 g)高自旋态与1A1g(t62g)低自旋态之间的零点能量差ΔE0HL为估计在2500–5000 cm-1范围内。该估计基于光诱导的高自旋态种群之后高自旋→低自旋弛豫的低温动力学,以及两个状态之间的键长差ΔrHL等于自旋交叉系统的实验值约为≈0.2Å。基于密度泛函理论(DFT)的计算证实了结构假设,因为发现低自旋态优化几何结构与配合物的实验X射线结构非常吻合,并且预测的高自旋几何结构全部一系列通用GGA(PB86,PW91,PBE,RPBE)和混合(B3LYP,B3LYP *,PBE1PBE)功能非常接近。对根据实验弛豫速率常数估算ΔE0HL所依据的结构假设的确认,使我们能够使用此值来评估密度泛函计算HS和LS状态之间的能量差的能力。由于不同的功能给出的值从-1000到12000 cm-1,因此将计算值与实验估算值进行比较,从而为给定功能的性能提供了严格的标准。基于此比较,RPBE和B3LYP *功能与实验具有最佳一致性。

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