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Dive into the research topics where Simone Techert is active.

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Featured researches published by Simone Techert.


Nature | 2015

Orbital-specific mapping of the ligand exchange dynamics of Fe(CO)(5) in solution

Ph. Wernet; Kristjan Kunnus; Ida Josefsson; Ivan Rajkovic; Wilson Quevedo; Martin Beye; Simon Schreck; S. Grübel; Mirko Scholz; Dennis Nordlund; Wenkai Zhang; Robert W. Hartsock; W. F. Schlotter; J. J. Turner; Brian Kennedy; Franz Hennies; F.M.F. de Groot; Kelly J. Gaffney; Simone Techert; Michael Odelius; A. Föhlisch

Transition-metal complexes have long attracted interest for fundamental chemical reactivity studies and possible use in solar energy conversion. Electronic excitation, ligand loss from the metal centre, or a combination of both, creates changes in charge and spin density at the metal site that need to be controlled to optimize complexes for photocatalytic hydrogen production and selective carbon–hydrogen bond activation. An understanding at the molecular level of how transition-metal complexes catalyse reactions, and in particular of the role of the short-lived and reactive intermediate states involved, will be critical for such optimization. However, suitable methods for detailed characterization of electronic excited states have been lacking. Here we show, with the use of X-ray laser-based femtosecond-resolution spectroscopy and advanced quantum chemical theory to probe the reaction dynamics of the benchmark transition-metal complex Fe(CO)5 in solution, that the photo-induced removal of CO generates the 16-electron Fe(CO)4 species, a homogeneous catalyst with an electron deficiency at the Fe centre, in a hitherto unreported excited singlet state that either converts to the triplet ground state or combines with a CO or solvent molecule to regenerate a penta-coordinated Fe species on a sub-picosecond timescale. This finding, which resolves the debate about the relative importance of different spin channels in the photochemistry of Fe(CO)5 (refs 4, 16,17,18,19 and 20), was made possible by the ability of femtosecond X-ray spectroscopy to probe frontier-orbital interactions with atom specificity. We expect the method to be broadly applicable in the chemical sciences, and to complement approaches that probe structural dynamics in ultrafast processes.


Review of Scientific Instruments | 2012

A setup for resonant inelastic soft x-ray scattering on liquids at free electron laser light sources

Kristjan Kunnus; Ivan Rajkovic; Simon Schreck; Wilson Quevedo; Sebastian Eckert; M. Beye; Edlira Suljoti; Christian Weniger; Christian Kalus; S. Grübel; Mirko Scholz; Dennis Nordlund; Wenkai Zhang; Robert W. Hartsock; Kelly J. Gaffney; W. F. Schlotter; J. J. Turner; Brian Kennedy; Franz Hennies; Simone Techert; Philippe Wernet; A. Föhlisch

We present a flexible and compact experimental setup that combines an in vacuum liquid jet with an x-ray emission spectrometer to enable static and femtosecond time-resolved resonant inelastic soft x-ray scattering (RIXS) measurements from liquids at free electron laser (FEL) light sources. We demonstrate the feasibility of this type of experiments with the measurements performed at the Linac Coherent Light Source FEL facility. At the FEL we observed changes in the RIXS spectra at high peak fluences which currently sets a limit to maximum attainable count rate at FELs. The setup presented here opens up new possibilities to study the structure and dynamics in liquids.


Computer Physics Communications | 2012

CASS—CFEL-ASG software suite.

Lutz Foucar; Anton Barty; Nicola Coppola; Robert Hartmann; Peter Holl; Uwe Hoppe; Stephan Kassemeyer; Nils Kimmel; Jochen Küpper; Mirko Scholz; Simone Techert; Thomas A. White; L. Strüder; Joachim Ullrich

The Max Planck Advanced Study Group (ASG) at the Center for Free Electron Laser Science (CFEL) has created the CFEL ASG Software Suite CASS to view, process and analyse multi-parameter experimental data acquired at Free Electron Lasers (FELs) using the CFEL ASG Multi Purpose (CAMP) instrument [1]. The software is based on a modular design so that it can be adjusted to


Journal of Physical Chemistry Letters | 2012

Dissecting Local Atomic and Intermolecular Interactions of Transition-Metal Ions in Solution with Selective X-ray Spectroscopy

Philippe Wernet; Kristjan Kunnus; Simon Schreck; Wilson Quevedo; Reshmi Kurian; Simone Techert; F.M.F. de Groot; Michael Odelius; A. Fröhlich

Determining covalent and charge-transfer contributions to bonding in solution has remained an experimental challenge. Here, the quenching of fluorescence decay channels as expressed in dips in the L-edge X-ray spectra of solvated 3d transition-metal ions and complexes was reported as a probe. With a full set of experimental and theoretical ab initio L-edge X-ray spectra of aqueous Cr(3+), including resonant inelastic X-ray scattering, we address covalency and charge transfer for this prototypical transition-metal ion in solution. We dissect local atomic effects from intermolecular interactions and quantify X-ray optical effects. We find no evidence for the asserted ultrafast charge transfer to the solvent and show that the dips are readily explained by X-ray optical effects and local atomic state dependence of the fluorescence yield. Instead, we find, besides ionic interactions, a covalent contribution to the bonding in the aqueous complex of ligand-to-metal charge-transfer character.


Journal of the American Chemical Society | 2009

Time-resolved X-ray diffraction of the photochromic alpha-styrylpyrylium trifluoromethanesulfonate crystal films reveals ultrafast structural switching.

Jörg Hallmann; Wolfgang Morgenroth; Carsten Paulmann; Jav Davaasambuu; Qingyu Kong; Michael Wulff; Simone Techert

The ultrafast structural dynamics of the [2+2] photocycloaddition of alpha-styrylpyrylium trifluoromethanesulfonate (TFMS) has been studied in great detail. During the photoreaction, optical and infrared spectroscopy confirms that crystals of alpha-styrylpyrylium change color. Since the reaction is reversible, it has been suggested to be used as an organic holographic storage device. The present photocrystallographic studies (with high spatial resolution) allow for an electron density analysis of the overall reaction kinetics, revealing the mechanism of bond-breaking and bond-formation. It could furthermore be proved how the reaction is influenced by the rearrangement of the surrounding moieties. Picosecond time-resolved X-ray diffraction studies allow for the monitoring the photoreaction in crystalline thin films under experimental conditions where the transformation times are greatly enhanced. These investigations are discussed in the context of the photocrystallographic results. It has been found that alpha-styrylpyrylium TFMS undergoes an ultrafast photoreaction to the dimer product state and back-reaction to the monomer reactant state which is temperature driven. The present experiments indicate that TFMS reacts on time scales which are the fundamental limiting ones of two-quantum systems and therefore has the potential to be used as an ultrafast organic molecular switcher.


Journal of Physics B | 2014

Femtosecond x-ray photoelectron diffraction on gas-phase dibromobenzene molecules

Daniel Rolles; Rebecca Boll; Marcus Adolph; Andy Aquila; Christoph Bostedt; John D. Bozek; Henry N. Chapman; Ryan Coffee; Nicola Coppola; P. Decleva; Tjark Delmas; Sascha W. Epp; Benjamin Erk; Frank Filsinger; Lutz Foucar; Lars Gumprecht; André Hömke; Tais Gorkhover; Lotte Holmegaard; Per Johnsson; Ch Kaiser; Faton Krasniqi; K. U. Kühnel; Jochen Maurer; Marc Messerschmidt; R. Moshammer; Wilson Quevedo; Ivan Rajkovic; Arnaud Rouzée; Benedikt Rudek

We present time-resolved femtosecond photoelectron momentum images and angular distributions of dissociating, laser-aligned 1,4-dibromobenzene (C6H4Br2) molecules measured in a near-infrared pump, soft-x-ray probe experiment performed at an x-ray free-electron laser. The observed alignment dependence of the bromine 2p photoelectron angular distributions is compared to density functional theory calculations and interpreted in terms of photoelectron diffraction. While no clear time-dependent effects are observed in the angular distribution of the Br(2p) photoelectrons, other, low-energy electrons show a pronounced dependence on the time delay between the near-infrared laser and the x-ray pulse.


Journal of Physical Chemistry B | 2013

From ligand fields to molecular orbitals: Probing the local valence electronic structure of Ni2+ in aqueous solution with resonant inelastic X-ray scattering.

Kristjan Kunnus; Ida Josefsson; Simon Schreck; Wilson Quevedo; Piter S. Miedema; Simone Techert; F.M.F. de Groot; Michael Odelius; Philippe Wernet; A. Föhlisch

Bonding of the Ni(2+)(aq) complex is investigated with an unprecedented combination of resonant inelastic X-ray scattering (RIXS) measurements and ab initio calculations at the Ni L absorption edge. The spectra directly reflect the relative energies of the ligand-field and charge-transfer valence-excited states. They give element-specific access with atomic resolution to the ground-state electronic structure of the complex and allow quantification of ligand-field strength and 3d-3d electron correlation interactions in the Ni(2+)(aq) complex. The experimentally determined ligand-field strength is 10Dq = 1.1 eV. This and the Racah parameters characterizing 3d-3d Coulomb interactions B = 0.13 eV and C = 0.42 eV as readily derived from the measured energies match very well with the results from UV-vis spectroscopy. Our results demonstrate how L-edge RIXS can be used to complement existing spectroscopic tools for the investigation of bonding in 3d transition-metal coordination compounds in solution. The ab initio RASPT2 calculation is successfully used to simulate the L-edge RIXS spectra.


Journal of Chemical Physics | 2006

Ab initio treatment of time-resolved x-ray scattering: Application to the photoisomerization of stilbene

Andrea Debnarova; Simone Techert; Stefan Schmatz

In this work we present a general theoretical outline for calculating time-dependent x-ray scattering signal changes from first principles. We derive a formalism for the description of atom-atom correlation functions as Fourier transforms of quantum-chemically calculated electron densities and show their proportionality to the molecular form factor. The formalism derived in this work is applied to the photoisomerization of stilbene. We can demonstrate that wide-angle x-ray scattering offers a possibility to study the changes in electron densities in nonperiodic complex systems, which renders it a suitable technique for the investigation of (bio)organic systems.


Faraday Discussions | 2014

Imaging molecular structure through femtosecond photoelectron diffraction on aligned and oriented gas-phase molecules.

Rebecca Boll; Arnaud Rouzée; Marcus Adolph; Denis Anielski; Andrew Aquila; Sadia Bari; Cédric Bomme; Christoph Bostedt; John D. Bozek; Henry N. Chapman; Lauge Christensen; Ryan Coffee; Niccola Coppola; Sankar De; Piero Decleva; Sascha W. Epp; Benjamin Erk; Frank Filsinger; Lutz Foucar; Tais Gorkhover; Lars Gumprecht; André Hömke; Lotte Holmegaard; Per Johnsson; Jens S. Kienitz; Thomas Kierspel; Faton Krasniqi; Kai-Uwe Kühnel; Jochen Maurer; Marc Messerschmidt

This paper gives an account of our progress towards performing femtosecond time-resolved photoelectron diffraction on gas-phase molecules in a pump-probe setup combining optical lasers and an X-ray free-electron laser. We present results of two experiments aimed at measuring photoelectron angular distributions of laser-aligned 1-ethynyl-4-fluorobenzene (C(8)H(5)F) and dissociating, laser-aligned 1,4-dibromobenzene (C(6)H(4)Br(2)) molecules and discuss them in the larger context of photoelectron diffraction on gas-phase molecules. We also show how the strong nanosecond laser pulse used for adiabatically laser-aligning the molecules influences the measured electron and ion spectra and angular distributions, and discuss how this may affect the outcome of future time-resolved photoelectron diffraction experiments.


Structural Dynamics | 2016

Identification of the dominant photochemical pathways and mechanistic insights to the ultrafast ligand exchange of Fe(CO)5 to Fe(CO)4EtOH

Kristjan Kunnus; Ida Josefsson; Ivan Rajkovic; Simon Schreck; Wilson Quevedo; Martin Beye; Christian Weniger; S. Grübel; Mirko Scholz; Dennis Nordlund; Wenkai Zhang; Robert W. Hartsock; Kelly J. Gaffney; W. F. Schlotter; J. J. Turner; Brian K. Kennedy; Franz Hennies; F.M.F. de Groot; Simone Techert; Michael Odelius; Ph. Wernet; A. Föhlisch

We utilized femtosecond time-resolved resonant inelastic X-ray scattering and ab initio theory to study the transient electronic structure and the photoinduced molecular dynamics of a model metal carbonyl photocatalyst Fe(CO)5 in ethanol solution. We propose mechanistic explanation for the parallel ultrafast intra-molecular spin crossover and ligation of the Fe(CO)4 which are observed following a charge transfer photoexcitation of Fe(CO)5 as reported in our previous study [Wernet et al., Nature 520, 78 (2015)]. We find that branching of the reaction pathway likely happens in the 1A1 state of Fe(CO)4. A sub-picosecond time constant of the spin crossover from 1B2 to 3B2 is rationalized by the proposed 1B2 → 1A1 → 3B2 mechanism. Ultrafast ligation of the 1B2 Fe(CO)4 state is significantly faster than the spin-forbidden and diffusion limited ligation process occurring from the 3B2 Fe(CO)4 ground state that has been observed in the previous studies. We propose that the ultrafast ligation occurs via 1B2 → 1A1 → 1A′ Fe(CO)4EtOH pathway and the time scale of the 1A1 Fe(CO)4 state ligation is governed by the solute-solvent collision frequency. Our study emphasizes the importance of understanding the interaction of molecular excited states with the surrounding environment to explain the relaxation pathways of photoexcited metal carbonyls in solution.

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Wilson Quevedo

Helmholtz-Zentrum Berlin

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Mirko Scholz

Folkwang University of the Arts

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A. Föhlisch

Helmholtz-Zentrum Berlin

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Simon Schreck

Helmholtz-Zentrum Berlin

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