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26
result(s) for
"Toleikis, Sven"
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Non-thermal structural transformation of diamond driven by x-rays
by
Höppner, Hauke
,
Toleikis, Sven
,
Kapcia, Konrad J.
in
Chemistry
,
Crystal lattices
,
Debye-Waller factor
2023
Intense x-ray pulses can cause the non-thermal structural transformation of diamond. At the SACLA XFEL facility, pump x-ray pulses triggered this phase transition, and probe x-ray pulses produced diffraction patterns. Time delays were observed from 0 to 250 fs, and the x-ray dose varied from 0.9 to 8.0 eV/atom. The intensity of the (111), (220), and (311) diffraction peaks decreased with time, indicating a disordering of the crystal lattice. From a Debye–Waller analysis, the rms atomic displacements perpendicular to the (111) planes were observed to be significantly larger than those perpendicular to the (220) or (311) planes. At a long time delay of 33 ms, graphite (002) diffraction indicates that graphitization did occur above a threshold dose of 1.2 eV/atom. These experimental results are in qualitative agreement with XTANT+ simulations using a hybrid model based on density-functional tight-binding molecular dynamics.
Journal Article
Effect of Auger recombination on transient optical properties in XUV and soft X-ray irradiated silicon nitride
by
Höppner, Hauke
,
Büscher, Martin
,
Toleikis, Sven
in
639/624/1020/1095
,
639/766/119
,
CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY
2021
Spatially encoded measurements of transient optical transmissivity became a standard tool for temporal diagnostics of free-electron-laser (FEL) pulses, as well as for the arrival time measurements in X-ray pump and optical probe experiments. The modern experimental techniques can measure changes in optical coefficients with a temporal resolution better than 10 fs. This, in an ideal case, would imply a similar resolution for the temporal pulse properties and the arrival time jitter between the FEL and optical laser pulses. However, carrier transport within the material and out of its surface, as well as carrier recombination may, in addition, significantly decrease the number of carriers. This would strongly affect the transient optical properties, making the diagnostic measurement inaccurate. Below we analyze in detail the effects of those processes on the optical properties of XUV and soft X-ray irradiated Si
3
N
4
, on sub-picosecond timescales. Si
3
N
4
is a wide-gap insulating material widely used for FEL pulse diagnostics. Theoretical predictions are compared with the published results of two experiments at FERMI and LCLS facilities, and with our own recent measurement. The comparison indicates that three body Auger recombination strongly affects the optical response of Si
3
N
4
after its collisional ionization stops. By deconvolving the contribution of Auger recombination, in future applications one could regain a high temporal resolution for the reconstruction of the FEL pulse properties measured with a Si
3
N
4
-based diagnostics tool.
Journal Article
Photodissociation of aligned CH3I and C6H3F2I molecules probed with time-resolved Coulomb explosion imaging by site-selective extreme ultraviolet ionization
by
Kierspel, Thomas
,
Berrah, Nora
,
Toleikis, Sven
in
Atom and Molecular Physics and Optics
,
Atom- och molekylfysik och optik (Här ingår: Kemisk fysik, kvantoptik)
,
ATOMIC AND MOLECULAR PHYSICS
2018
We explore time-resolved Coulomb explosion induced by intense, extreme ultraviolet (XUV)
femtosecond pulses from a free-electron laser as a method to image photo-induced molecular
dynamics in two molecules, iodomethane and 2,6-difluoroiodobenzene. At an excitation
wavelength of 267 nm, the dominant reaction pathway in both molecules is neutral
dissociation via cleavage of the carbon–iodine bond. This allows investigating the
influence of the molecular environment on the absorption of an intense, femtosecond XUV
pulse and the subsequent Coulomb explosion process. We find that the XUV probe pulse
induces local inner-shell ionization of atomic iodine in dissociating iodomethane, in
contrast to non-selective ionization of all photofragments in difluoroiodobenzene. The
results reveal evidence of electron transfer from methyl and phenyl moieties to a multiply
charged iodine ion. In addition, indications for ultrafast charge rearrangement on the
phenyl radical are found, suggesting that time-resolved Coulomb explosion imaging is
sensitive to the localization of charge in extended molecules.
Journal Article
Author Correction: Generation and characterization of ultrathin free-flowing liquid sheets
by
Sperling, Philipp
,
Toleikis, Sven
,
Curry, Chandra B.
in
639/766
,
639/766/930/328
,
639/766/930/527/2257
2019
The original version of this Article contained an error in Eq. (1). This has been corrected in both the PDF and HTML versions of the Article.The original version of this Article contained an error in Eq. (1). This has been corrected in both the PDF and HTML versions of the Article.
Journal Article
Generation and characterization of ultrathin free-flowing liquid sheets
by
Sperling, Philipp
,
Toleikis, Sven
,
Curry, Chandra B.
in
639/766
,
639/766/930/328
,
639/766/930/527/2257
2018
The physics and chemistry of liquid solutions play a central role in science, and our understanding of life on Earth. Unfortunately, key tools for interrogating aqueous systems, such as infrared and soft X-ray spectroscopy, cannot readily be applied because of strong absorption in water. Here we use gas-dynamic forces to generate free-flowing, sub-micron, liquid sheets which are two orders of magnitude thinner than anything previously reported. Optical, infrared, and X-ray spectroscopies are used to characterize the sheets, which are found to be tunable in thickness from over 1 μm down to less than 20 nm, which corresponds to fewer than 100 water molecules thick. At this thickness, aqueous sheets can readily transmit photons across the spectrum, leading to potentially transformative applications in infrared, X-ray, electron spectroscopies and beyond. The ultrathin sheets are stable for days in vacuum, and we demonstrate their use at free-electron laser and synchrotron light sources.
X-ray spectroscopy is a tool used for the investigation of aqueous solutions but the strong absorption of water means that very thin liquid sheets are needed for accurate analysis. Here the authors produce free-flowing liquid sheets 2 orders of magnitude thinner than sheets obtained with existing techniques.
Journal Article
Charge-induced chemical dynamics in glycine probed with time-resolved Auger electron spectroscopy
2022
In the present contribution, we use x-rays to monitor charge-induced chemical dynamics in the photoionized amino acid glycine with femtosecond time resolution. The outgoing photoelectron leaves behind the cation in a coherent superposition of quantum mechanical eigenstates. Delayed x-ray pulses track the induced coherence through resonant x-ray absorption that induces Auger decay. Temporal modulation of the Auger electron signal correlated with specific ions is observed, which is governed by the initial electronic coherence and subsequent vibronic coupling to nuclear degrees of freedom. In the time-resolved x-ray absorption measurement, we monitor the time-frequency spectra of the resulting many-body quantum wave packets for a period of 175 fs along different reaction coordinates. Our experiment proves that by measuring specific fragments associated with the glycine dication as a function of the pump-probe delay, one can selectively probe electronic coherences at early times associated with a few distinguishable components of the broad electronic wave packet created initially by the pump pulse in the cation. The corresponding coherent superpositions formed by subsets of electronic eigenstates and evolving along parallel dynamical pathways show different phases and time periods in the range of
(
−
0.3
±
0.1
)
π
≤
ϕ
≤
(
0.1
±
0.2
)
π and
18.2
−
1.4
+
1.7
≤
T
≤
23.9
−
1.1
+
1.2 fs. Furthermore, for long delays, the data allow us to pinpoint the driving vibrational modes of chemical dynamics mediating charge-induced bond cleavage along different reaction coordinates.
Journal Article
X-ray free electron laser heating of water and gold at high static pressure
2021
Probing of reactive materials such as H
2
O ices and fluids at the high pressures and temperatures of planetary interiors is limited by unwanted chemical reactions and confinement failure. Faster experiments can mitigate such issues, but the common approach of adiabatic compression limits the conditions achieved. This study demonstrates a fast experimental strategy for the creation and probing of selected extreme states using static compression coupled with ultrafast X-ray laser heating. Indirect X-ray heating of H
2
O through the use of a gold absorber is evidenced by sample melting inferred from textural changes in the H
2
O diffraction lines and inter-dispersion of gold and H
2
O melts. Coupled with numerical analysis of femtosecond energy absorption, thermal equilibration, and heat transfer, all evidence indicates that temperatures in excess of an electron volt have been reached in the H
2
O at high pressure. Even after repeated heating, samples stayed chemically unchanged from the starting material.
The study of water at high pressure and temperature is essential for understanding planetary interiors but is hampered by the high reactivity of water at extreme conditions. Here, indirect X-ray laser heating of water in a diamond anvil cell is realized via a gold absorber, showing no evidence of reactivity.
Journal Article
Pulse Duration of Seeded Free-Electron Lasers
by
Plekan, Oksana
,
Toleikis, Sven
,
Golz, Torsten
in
Atom and Molecular Physics and Optics
,
Atom- och molekylfysik och optik
,
ATOMIC AND MOLECULAR PHYSICS
2017
The pulse duration, and, more generally, the temporal intensity profile of free-electron laser (FEL) pulses, is of utmost importance for exploring the new perspectives offered by FELs; it is a nontrivial experimental parameter that needs to be characterized. We measured the pulse shape of an extreme ultraviolet externally seeded FEL operating in high-gain harmonic generation mode. Two different methods based on the cross-correlation of the FEL pulses with an external optical laser were used. The two methods, one capable of single-shot performance, may both be implemented as online diagnostics in FEL facilities. The measurements were carried out at the seeded FEL facility FERMI. The FEL temporal pulse characteristics were measured and studied in a range of FEL wavelengths and machine settings, and they were compared to the predictions of a theoretical model. The measurements allowed a direct observation of the pulse lengthening and splitting at saturation, in agreement with the proposed theory.
Journal Article
Attosecond interferometry with self-amplified spontaneous emission of a free-electron laser
by
Usenko, Sergey
,
Jakob, Markus Alexander
,
Przystawik, Andreas
in
132/124
,
140/125
,
639/766/400/1103
2017
Light-phase-sensitive techniques, such as coherent multidimensional spectroscopy, are well-established in a broad spectral range, already spanning from radio-frequencies in nuclear magnetic resonance spectroscopy to visible and ultraviolet wavelengths in nonlinear optics with table-top lasers. In these cases, the ability to tailor the phases of electromagnetic waves with high precision is essential. Here we achieve phase control of extreme-ultraviolet pulses from a free-electron laser (FEL) on the attosecond timescale in a Michelson-type all-reflective interferometric autocorrelator. By varying the relative phase of the generated pulse replicas with sub-cycle precision we observe the field interference, that is, the light-wave oscillation with a period of 129 as. The successful transfer of a powerful optical method towards short-wavelength FEL science and technology paves the way towards utilization of advanced nonlinear methodologies even at partially coherent soft X-ray FEL sources that rely on self-amplified spontaneous emission.
Phase-sensitive measurements are important to gain insights of light-matter interactions and require phase-controlled pulses. Here the authors demonstrate the phase control and interferometric autocorrelation on a free electron laser using SASE pulse pair created with a split and delay unit.
Journal Article
The soft X‐ray and XUV split‐and‐delay unit at beamlines FL23/24 at FLASH2
2023
A split‐and‐delay unit for the extreme ultraviolet and soft X‐ray spectral regions has been built which enables time‐resolved experiments at beamlines FL23 and FL24 at the Free‐electron LASer in Hamburg (FLASH). Geometric wavefront splitting at a sharp edge of a beam splitting mirror is applied to split the incoming soft X‐ray pulse into two beams. Ni and Pt coatings at grazing incidence angles have been chosen in order to cover the whole spectral range of FLASH2 and beyond, up to hν = 1800 eV. In the variable beam path with a grazing incidence angle of ϑd = 1.8°, the total transmission (T) ranges are of the order of 0.48 < T < 0.84 for hν < 100 eV and T > 0.50 for 100 eV < hν < 650 eV with the Ni coating, and T > 0.06 for hν < 1800 eV for the Pt coating. For a fixed beam path with a grazing incidence angle of ϑf = 1.3°, a transmission of T > 0.61 with the Ni coating and T > 0.23 with a Pt coating is achieved. Soft X‐ray pump/soft X‐ray probe experiments are possible within a delay range of −5 ps < Δt < +18 ps with a nominal time resolution of tr = 66 as and a measured timing jitter of tj = 121 ± 2 as. First experiments with the split‐and‐delay unit determined the averaged coherence time of FLASH2 to be τc = 1.75 fs at λ = 8 nm, measured at a purposely reduced coherence of the free‐electron laser. The properties of the recently installed split‐and‐delay unit at beamlines FL23 and FL24 at FLASH2 are presented. Its operational range, performance parameters and results of a first experiment are described.
Journal Article