Journal of the American Chemical Society · 2019 · 71 citations · 42 references
Fe(II) coordination complexes are promising alternatives to Ru(II) and Ir(III) chromophores for photoredox chemistry and solar energy conversion, but rapid deactivation of the initial metal-to-ligand charge transfer (MLCT) state to low-lying (d,d) states limits their performance. Relaxation to a long-lived quintet state is postulated to occur via a metal-centered triplet state, but this mechanism remains controversial. We use femtosecond extreme ultraviolet (XUV) transient absorption spectroscopy to measure the excited-state relaxation of Fe(phen)<sub>3</sub><sup>2+</sup> and conclusively identify a <sup>3</sup>T intermediate that forms in 170 fs and decays to a vibrationally hot <sup>5</sup>T<sub>2g</sub> state in 39 fs. A coherent vibrational wavepacket with a period of 249 fs and damping time of 0.63 ps is observed on the <sup>5</sup>T<sub>2g</sub> surface, and the spectrum of this oscillation serves as a fingerprint for the Fe-N symmetric stretch. The results show that the shape of the M<sub>2,3</sub>-edge X-ray absorption near-edge structure (XANES) spectrum is sensitive to the electronic structure of the metal center, and the high-spin sensitivity, fast time resolution, and tabletop convenience of XUV transient absorption make it a powerful tool for studying the complex photophysics of transition metal complexes.
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Tracking excited-state charge and spin dynamics in iron coordination complexes
Wenkai Zhang, Roberto Alonso‐Mori, Uwe Bergmann et al. · Nature · 2014 · 451 citations · Full text
Sub-50-fs photoinduced spin crossover in [Fe(bpy)3]2+
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Luminescence and reactivity of a charge-transfer excited iron complex with nanosecond lifetime
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