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Generation of highly mutually coherent hard x-ray pulse pairs with an amplitude-splitting delay line
Haoyuan Li,Yanwen Sun,Joan Vila-Comamala,Takahiro Sato,Sanghoon Song,Peihao Sun,Matthew Seaberg,Nan Wang,Jerome B. Hastings,Mike Dunne,Paul H. Fuoss,Christian David,Mark Sutton,Diling Zhu +13 more
TL;DR: In this paper, the amplitude-split delay line design based on transmission grating beam splitters and channel-cut crystal optic delay lines is presented for the generation of highly mutually coherent pulse pairs.
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Abstract: Beam splitters and delay lines are among the key building blocks of modern-day optical laser technologies. Progress in x-ray free electron laser source development and applications over the past decade is calling for their counter part operating in the Angstrom wavelength regime. Recent efforts in x-ray optics development have demonstrated relatively stable delay lines that most often adopted the division of wavefront approach for the beam splitting and recombination configuration. However, the two recombined beams have yet to achieve sufficient mutual coherence to enable applications such as interferometry, correlation spectroscopy, and nonlinear spectroscopy. We present the first experimental realization of the generation of highly mutually coherent pulse pairs using an amplitude-split delay line design based on transmission grating beam splitters and channel-cut crystal optic delay lines. The performance of the prototype system was analyzed in the context of x-ray coherent scattering and correlation spectroscopy, where we obtained nearly identical high-contrast speckle patterns from both branches. We show in addition the high level of dynamical stability during continuous delay scans, a capability essential for high sensitivity ultra-fast measurements.
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References
Design of a compact hard x-ray split-delay system based on variable-gap channelcut crystals
Yanwen Sun,Aymeric Robert,Diling Zhu +2 more
- 16 Jan 2019
TL;DR: In this paper, a hard X-ray split-delay optics concept using 4 channelcut crystals is presented, where the beam path length difference can be adjusted by the linear translation of two crystals having non-parallel gaps.
XPCS at the European X-ray free electron laser facility
TL;DR: X-ray photon correlation spectroscopy (XPCS) measures the temporal changes in speckle patterns produced when coherent light is scattered by a disordered system and therefore allows to measure S ( Q, t ). as mentioned in this paper summarizes important aspects of the scientific case for an XPCS instrument at the planned XFEL.
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Christian Gutt,L.-M. Stadler,Agnès Duri,Tina Autenrieth,Olaf Leupold,Yuriy Chushkin,Gerhard Grübel +6 more
TL;DR: This work presents a new method to extract the intermediate scattering function from series of coherent diffraction patterns taken with 2D detectors based on analyzing speckle patterns in terms of photon statistics, and shows that the information obtained is equivalent to the conventional technique of calculating the intensity autocorrelation function.
Figuring with subnanometer-level accuracy by numerically controlled elastic emission machining
TL;DR: In this article, a numerically controlled elastic emission machining (EEM) system was developed to fabricate ultraprecise optical components, particularly in x-ray optics, by which a high shear-rate flow of ultrapure water can be generated on the work surface, to transport the fine powder particles to the processing surface.
A Bragg beam splitter for hard x-ray free-electron lasers.
Taito Osaka,Makina Yabashi,Yasuhisa Sano,Kensuke Tono,Yuichi Inubushi,Takahiro Sato,Satoshi Matsuyama,Tetsuya Ishikawa,Kazuto Yamauchi +8 more
TL;DR: A Bragg beam splitter developed for utilization of hard x-ray free-electron lasers is based on an ultrathin silicon crystal operating in the symmetric Bragg geometry to provide high reflectivity and transmissivity simultaneously.