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Journal article

Using Ultrafast X-ray Spectroscopy To Address Questions in Ligand-Field Theory: The Excited State Spin and Structure of [Fe(dcpp)2]2

From

European XFEL1

Pusan National University2

Lawrence Berkeley National Laboratory3

University of Hamburg4

Michigan State University5

Michigan State University6

German Electron Synchrotron7

Argonne National Laboratory8

Hungarian Academy of Sciences9

Department of Chemistry, Technical University of Denmark10

Korea Research Institute of Standards and Science11

North Carolina State University12

...and 2 more

We have employed a range of ultrafast X-ray spectroscopies in an effort to characterize the lowest energy excited state of [Fe(dcpp)2]2+ (where dcpp is 2,6-(dicarboxypyridyl)pyridine). This compound exhibits an unusually short excited-state lifetime for a low-spin Fe(II) polypyridyl complex of 270 ps in a room-temperature fluid solution, raising questions as to whether the ligand-field strength of dcpp had pushed this system beyond the 5T2/3T1 crossing point and stabilizing the latter as the lowest energy excited state.

Kα and Kβ X-ray emission spectroscopies have been used to unambiguously determine the quintet spin multiplicity of the long-lived excited state, thereby establishing the 5T2 state as the lowest energy excited state of this compound. Geometric changes associated with the photoinduced ligand-field state conversion have also been monitored with extended X-ray absorption fine structure.

The data show the typical average Fe-ligand bond length elongation of ∼0.18 Å for a 5T2 state and suggest a high anisotropy of the primary coordination sphere around the metal center in the excited 5T2 state, in stark contrast to the nearly perfect octahedral symmetry that characterizes the low-spin 1A1 ground state structure.

This study illustrates how the application of time-resolved X-ray techniques can provide insights into the electronic structures of molecules-in particular, transition metal complexes-that are difficult if not impossible to obtain by other means.

Language: English
Publisher: American Chemical Society
Year: 2019
Pages: 9341-9350
ISSN: 1520510x and 00201669
Types: Journal article
DOI: 10.1021/acs.inorgchem.9b01063
ORCIDs: 0000-0002-1049-2841 , 0000-0001-7824-9197 , Pápai, Mátyás Imre , 0000-0003-2084-078X , 0000-0001-6008-7513 , 0000-0001-7124-8300 , 0000-0002-3281-7600 , 0000-0002-3095-6551 and 0000-0002-5684-3117

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