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Dive into the research topics where F. Sorgenfrei is active.

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Featured researches published by F. Sorgenfrei.


Review of Scientific Instruments | 2012

The soft x-ray instrument for materials studies at the linac coherent light source x-ray free-electron laser.

W. F. Schlotter; J. J. Turner; Michael Rowen; P. A. Heimann; Michael Holmes; O. Krupin; M. Messerschmidt; Stefan Moeller; J. Krzywinski; Regina Soufli; Mónica Fernández-Perea; N. Kelez; Sooheyong Lee; Ryan Coffee; G. Hays; M. Beye; N. Gerken; F. Sorgenfrei; Stefan P. Hau-Riege; L. Juha; J. Chalupsky; V. Hajkova; Adrian P. Mancuso; A. Singer; O. Yefanov; I. A. Vartanyants; Guido Cadenazzi; Brian Abbey; Keith A. Nugent; H. Sinn

The soft x-ray materials science instrument is the second operational beamline at the linac coherent light source x-ray free electron laser. The instrument operates with a photon energy range of 480-2000 eV and features a grating monochromator as well as bendable refocusing mirrors. A broad range of experimental stations may be installed to study diverse scientific topics such as: ultrafast chemistry, surface science, highly correlated electron systems, matter under extreme conditions, and laboratory astrophysics. Preliminary commissioning results are presented including the first soft x-ray single-shot energy spectrum from a free electron laser.


Review of Scientific Instruments | 2011

Linac Coherent Light Source soft x-ray materials science instrument optical design and monochromator commissioning

Philip A. Heimann; O. Krupin; W. F. Schlotter; J. J. Turner; J. Krzywinski; F. Sorgenfrei; Marc Messerschmidt; David Bernstein; J. Chalupský; Vera Hájková; Stefan P. Hau-Riege; Michael Holmes; L. Juha; Nicholas Kelez; Jan Lüning; Dennis Nordlund; Monica Fernandez Perea; Andreas Scherz; Regina Soufli; W. Wurth; Michael Rowen

We present the x-ray optical design of the soft x-ray materials science instrument at the Linac Coherent Light Source, consisting of a varied line-spaced grating monochromator and Kirkpatrick-Baez refocusing optics. Results from the commissioning of the monochromator are shown. A resolving power of 3000 was achieved, which is within a factor of two of the design goal.


Nature Materials | 2013

Speed limit of the insulator–metal transition in magnetite

S. de Jong; Roopali Kukreja; Christoph Trabant; N. Pontius; C. F. Chang; T. Kachel; M. Beye; F. Sorgenfrei; C. H. Back; Björn Bräuer; W. F. Schlotter; J. J. Turner; O. Krupin; M. Doehler; Diling Zhu; M. A. Hossain; Andreas Scherz; Daniele Fausti; Fabio Novelli; Martina Esposito; Wei-Sheng Lee; Yi-De Chuang; D. H. Lu; R. G. Moore; M. Yi; M. Trigo; Patrick S. Kirchmann; L. Pathey; M. S. Golden; M. Buchholz

As the oldest known magnetic material, magnetite (Fe3O4) has fascinated mankind for millennia. As the first oxide in which a relationship between electrical conductivity and fluctuating/localized electronic order was shown, magnetite represents a model system for understanding correlated oxides in general. Nevertheless, the exact mechanism of the insulator-metal, or Verwey, transition has long remained inaccessible. Recently, three-Fe-site lattice distortions called trimerons were identified as the characteristic building blocks of the low-temperature insulating electronically ordered phase. Here we investigate the Verwey transition with pump-probe X-ray diffraction and optical reflectivity techniques, and show how trimerons become mobile across the insulator-metal transition. We find this to be a two-step process. After an initial 300 fs destruction of individual trimerons, phase separation occurs on a 1.5±0.2 ps timescale to yield residual insulating and metallic regions. This work establishes the speed limit for switching in future oxide electronics.


Optics Express | 2012

Temporal cross-correlation of x-ray free electron and optical lasers using soft x-ray pulse induced transient reflectivity.

O. Krupin; M. Trigo; W. F. Schlotter; Martin Beye; F. Sorgenfrei; J. J. Turner; David A. Reis; N. Gerken; Sooheyong Lee; W. S. Lee; G. Hays; Yves Acremann; Brian Abbey; Ryan Coffee; Marc Messerschmidt; Stefan P. Hau-Riege; G. Lapertot; Jan Lüning; P. A. Heimann; Regina Soufli; Mónica Fernández-Perea; Michael Rowen; Michael Holmes; S. L. Molodtsov; A. Föhlisch; W. Wurth

The recent development of x-ray free electron lasers providing coherent, femtosecond-long pulses of high brilliance and variable energy opens new areas of scientific research in a variety of disciplines such as physics, chemistry, and biology. Pump-probe experimental techniques which observe the temporal evolution of systems after optical or x-ray pulse excitation are one of the main experimental schemes currently in use for ultrafast studies. The key challenge in these experiments is to reliably achieve temporal and spatial overlap of the x-ray and optical pulses. Here we present measurements of the x-ray pulse induced transient change of optical reflectivity from a variety of materials covering the soft x-ray photon energy range from 500eV to 2000eV and outline the use of this technique to establish and characterize temporal synchronization of the optical-laser and FEL x-ray pulses.


Optics Letters | 2010

Longitudinal coherence measurements of an extreme-ultraviolet free-electron laser.

W. F. Schlotter; F. Sorgenfrei; T. Beeck; M. Beye; S. Gieschen; H. Meyer; Mitsuru Nagasono; A. Föhlisch; W. Wurth

We have measured the average single-pulse longitudinal coherence characteristics of FLASH, a self amplified spontaneous emission free electron laser, at extreme UV wavelengths. Electric field autocorrelation measurements in the time domain were enabled by a wavefront division beam splitter applied to a tunable delay Mach-Zehnder interferometer. These data agree with the spectral bandwidth measurements made in the frequency domain. They exhibit two correlation time scales and the measured coherence curves have relevant implications for single-shot measurements.


Review of Scientific Instruments | 2010

The extreme ultraviolet split and femtosecond delay unit at the plane grating monochromator beamline PG2 at FLASH.

F. Sorgenfrei; W. F. Schlotter; T. Beeck; Mitsuru Nagasono; S. Gieschen; H. Meyer; A. Föhlisch; M. Beye; W. Wurth

An extreme ultraviolet split and femtosecond delay unit based on grazing incidence Mach-Zehnder geometry has been designed and implemented on the plane grating monochromator beamline PG2 at FLASH, the Free Electron Laser at DESY. This device splits the FLASH radiation into two beams, which can independently be steered, filtered and temporally delayed between -5.1 and +5.1 ps with uncertainty in the temporal accuracy of 210 as. To demonstrate the performance of this device, we have performed longitudinal coherence studies of FLASH radiation as well as measured the pulse length by nonlinear two-photon double-ionization in helium.


Applied Physics Letters | 2011

Time-resolved resonant soft x-ray diffraction with free-electron lasers: Femtosecond dynamics across the Verwey transition in magnetite

N. Pontius; T. Kachel; C. Schüßler-Langeheine; W. F. Schlotter; Martin Beye; F. Sorgenfrei; C. F. Chang; A. Föhlisch; W. Wurth; P. Metcalf; I. Leonov; A. N. Yaresko; N. Stojanovic; M. Berglund; N. Guerassimova; S. Düsterer; H. Redlin; Hermann A. Dürr

Resonant soft x-ray diffraction (RSXD) with femtosecond (fs) time resolution is a powerful tool for disentangling the interplay between different degrees of freedom in strongly correlated electron materials. It allows addressing the coupling of particular degrees of freedom upon an external selective perturbation, e.g., by an optical or infrared laser pulse. Here, we report a time-resolved RSXD experiment from the prototypical correlated electron material magnetite using soft x-ray pulses from the free-electron laser FLASH in Hamburg. We observe ultrafast melting of the charge-orbital order leading to the formation of a transient phase, which has not been observed in equilibrium.


Structural Dynamics | 2015

Vacuum space charge effects in sub-picosecond soft X-ray photoemission on a molecular adsorbate layer

M. Dell'Angela; Toyli Anniyev; Martin Beye; Ryan Coffee; A. Föhlisch; Jörgen Gladh; Sarp Kaya; Tetsuo Katayama; O. Krupin; Anders Nilsson; Dennis Nordlund; W. F. Schlotter; Jonas A. Sellberg; F. Sorgenfrei; J. J. Turner; Henrik Öström; Hirohito Ogasawara; Martin Wolf; W. Wurth

Vacuum space charge induced kinetic energy shifts of O 1s and Ru 3d core levels in femtosecond soft X-ray photoemission spectra (PES) have been studied at a free electron laser (FEL) for an oxygen layer on Ru(0001). We fully reproduced the measurements by simulating the in-vacuum expansion of the photoelectrons and demonstrate the space charge contribution of the high-order harmonics in the FEL beam. Employing the same analysis for 400 nm pump-X-ray probe PES, we can disentangle the delay dependent Ru 3d energy shifts into effects induced by space charge and by lattice heating from the femtosecond pump pulse.


Applied Physics Letters | 2014

Ultrafast reduction of the total magnetization in iron

A. Fognini; Thomas Michlmayr; G. Salvatella; C. Wetli; U. Ramsperger; T. Bähler; F. Sorgenfrei; M. Beye; A. Eschenlohr; N. Pontius; C. Stamm; F. Hieke; Martina Dell'Angela; S. de Jong; Roopali Kukreja; N. Gerasimova; V. Rybnikov; A. Al-Shemmary; H. Redlin; Jörg Raabe; A. Föhlisch; H. A. Dürr; W. Wurth; D. Pescia; A. Vaterlaus; Yves Acremann

Surprisingly, if a ferromagnet is exposed to an ultrafast laser pulse, its apparent magnetization is reduced within less than a picosecond. Up to now, the total magnetization, i.e., the average spin polarization of the whole valence band, was not detectable on a sub-picosecond time scale. Here, we present experimental data, confirming the ultrafast reduction of the total magnetization. Soft x-ray pulses from the free electron laser in Hamburg (FLASH) extract polarized cascade photoelectrons from an iron layer excited by a femtosecond laser pulse. The spin polarization of the emitted electrons is detected by a Mott spin polarimeter.


Science | 2013

Real-time observation of surface bond breaking with an x-ray laser.

M. Dell'Angela; Toyli Anniyev; M. Beye; Ryan Coffee; A. Föhlisch; Jörgen Gladh; Tetsuo Katayama; Sarp Kaya; O. Krupin; J. LaRue; Andreas Møgelhøj; Dennis Nordlund; Jens K. Nørskov; Henrik Öberg; Hirohito Ogasawara; Henrik Öström; Lars G. M. Pettersson; W. F. Schlotter; Jonas A. Sellberg; F. Sorgenfrei; J. J. Turner; Martin Wolf; W. Wurth; Anders Nilsson

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W. F. Schlotter

SLAC National Accelerator Laboratory

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W. Wurth

University of Hamburg

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A. Föhlisch

Helmholtz-Zentrum Berlin

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M. Beye

SLAC National Accelerator Laboratory

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J. J. Turner

SLAC National Accelerator Laboratory

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O. Krupin

SLAC National Accelerator Laboratory

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Ryan Coffee

SLAC National Accelerator Laboratory

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Dennis Nordlund

SLAC National Accelerator Laboratory

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Andreas Scherz

SLAC National Accelerator Laboratory

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Hirohito Ogasawara

SLAC National Accelerator Laboratory

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