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Disentangling Transient Charge Density and Metal-Ligand Covalency in Photoexcited Ferricyanide with Femtosecond Resonant Inelastic Soft X-ray Scattering
Stockholm University, Faculty of Science, Department of Physics.
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Number of Authors: 242018 (English)In: The Journal of Physical Chemistry Letters, E-ISSN 1948-7185, Vol. 9, no 12, p. 3538-3543Article in journal (Refereed) Published
Abstract [en]

Soft X-ray spectroscopies are ideal probes of the local valence electronic structure of photocatalytically active metal sites. Here, we apply the selectivity of time resolved resonant inelastic X-ray scattering at the iron L-edge to the transient charge distribution of an optically excited charge-transfer state in aqueous ferricyanide. Through comparison to steady-state spectra and quantum chemical calculations, the coupled effects of valence-shell closing and ligand-hole creation are experimentally and theoretically disentangled and described in terms of orbital occupancy, metal-ligand covalency, and ligand field splitting, thereby extending established steady-state concepts to the excited-state domain. pi-Back-donation is found to be mainly determined by the metal site occupation, whereas the ligand hole instead influences sigma-donation. Our results demonstrate how ultrafast resonant inelastic X-ray scattering can help characterize local charge distributions around catalytic metal centers in short-lived charge-transfer excited states, as a step toward future rationalization and tailoring of photocatalytic capabilities of transition-metal complexes.

Place, publisher, year, edition, pages
2018. Vol. 9, no 12, p. 3538-3543
National Category
Physical Sciences Chemical Sciences
Research subject
Theoretical Physics
Identifiers
URN: urn:nbn:se:su:diva-158243DOI: 10.1021/acs.jpclett.8b01429ISI: 000436382400057PubMedID: 29888918OAI: oai:DiVA.org:su-158243DiVA, id: diva2:1238703
Available from: 2018-08-14 Created: 2018-08-14 Last updated: 2024-07-04Bibliographically approved
In thesis
1. Fingerprints of light-induced molecular transients: from quantum chemical models of ultrafast x-ray spectroscopy
Open this publication in new window or tab >>Fingerprints of light-induced molecular transients: from quantum chemical models of ultrafast x-ray spectroscopy
2020 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Absorption of sunlight generates renewable electricity and powers the growth of plants, but also causes severe damage both to synthetic materials and biological tissue. The wildly varying outcomes of these light-induced processes are ultimately determined by much slighter differences in their underlying reaction pathways, induced by the transient properties of short-lived and miniscule molecules; a powerful approach to their detection and characterization is offered by ultrafast x-ray spectroscopy, with identification of spectral fingerprints and further guidance from quantum chemical models.

This thesis contains the computational half of three experimentally joint projects that push the limits for detection of electronic, spin and structural dynamics of small molecular systems in solution. A wide selection of theoretical frameworks are combined to model various aspects of the measurements: from multi-configurational descriptions of non-adiabatic couplings in the photo-dynamics and multi-electron transitions in the x-ray spectroscopy, to affordable simulations of extensive aqueous solutions by density functional theory and classical mechanics.

Applied to experimental data, the presented quantum chemical results allowed in particular to: simultaneously identify molecular forms and electronic states of aqueous 2-thiopyridone, to determine a detailed pathway for its excited-state proton-transfer; characterize the charge-transfer state of aqueous ferricyanide, to extend well-known concepts from steady-state spectroscopy into the ultrafast domain; establish the newly implemented framework of multi-configurational Dyson orbitals, as a powerful tool for simulation of photoelectron spectroscopy.

A number of computational predictions are additionally presented for hitherto-unexplored experimental regions, which may help to guide and optimize future measurements.

Place, publisher, year, edition, pages
Stockholm: Department of Physics, Stockholm University, 2020. p. 64
Keywords
time-resolved x-ray spectroscopy, quantum chemistry, electronic structure, multi-configurational self-consistent field, density functional theory, molecular dynamics, Born-Oppenheimer dynamics, non-adiabatic dynamics, proton-transfer, charge-transfer, solvatization, Dyson orbital
National Category
Atom and Molecular Physics and Optics
Research subject
Theoretical Physics
Identifiers
urn:nbn:se:su:diva-179758 (URN)978-91-7911-052-9 (ISBN)978-91-7911-053-6 (ISBN)
Public defence
2020-04-22, FA32, Albanova universitetscentrum, Roslagstullsbacken 21, Stockholm, 13:00 (English)
Opponent
Supervisors
Funder
Swedish Research Council, 2015-03956
Available from: 2020-03-30 Created: 2020-03-09 Last updated: 2022-02-26Bibliographically approved

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Norell, JesperOdelius, Michael

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