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Browsing by Author "Hartmann, A."

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    Erratum: Fractal morphology, imaging and mass spectrometry of single aerosol particles in flight
    (2012)
    Loh, N. D.
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    Hampton, C. Y.
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    Martin, A. V.
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    Starodub, D.
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    Sierra, R. G.
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    Barty, A.
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    Aquila, A.
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    Schulz, J.
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    Lomb, L.
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    Steinbrener, J.
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    Shoeman, R. L.
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    Kassemeyer, S.
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    Bostedt, C.
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    Bozek, J.
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    Epp, S. W.
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    Erk, B.
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    Hartmann, R.
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    Rolles, D.
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    Rudenko, A.
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    Rudek, B.
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    Foucar, L.
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    Kimmel, N.
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    Weidenspointner, G.
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    Hauser, G.
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    Holl, P.
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    Pedersoli, E.
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    Liang, M.
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    Hunter, M. S.
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    Gumprecht, L.
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    Coppola, N.
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    Wunderer, C.
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    Graafsma, H.
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    Maia, F. R. N. C.
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    Ekeberg, T.
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    Hantke, M.
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    Fleckenstein, H.
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    Hirsemann, H.
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    Nass, K.
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    White, T. A.
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    Tobias, H. J.
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    Farquar, G. R.
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    Benner, W. H.
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    Hau-Riege, S. P.
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    Reich, C.
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    Hartmann, A.
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    Soltau, H.
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    Marchesini, S.
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    Bajt, S.
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    Barthelmess, M.
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    Bucksbaum, P.
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    Hodgson, K. O.
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    Strüder, L.
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    Ullrich, J.
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    Frank, M.
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    Schlichting, I.
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    Chapman, H. N.
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    Bogan, M. J.
  • Some of the metrics are blocked by your 
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    Fractal morphology, imaging and mass spectrometry of single aerosol particles in flight
    (2012-06-27)
    Loh, N. D.
    ;
    Hampton, C. Y.
    ;
    Martin, A. V.
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    Starodub, D.
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    Sierra, R. G.
    ;
    Barty, A.
    ;
    Aquila, A.
    ;
    Schulz, J.
    ;
    Lomb, L.
    ;
    Steinbrener, J.
    ;
    Shoeman, R. L.
    ;
    Kassemeyer, S.
    ;
    Bostedt, C.
    ;
    Bozek, J.
    ;
    Epp, S. W.
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    Erk, B.
    ;
    Hartmann, R.
    ;
    Rolles, D.
    ;
    Rudenko, A.
    ;
    Rudek, B.
    ;
    Foucar, L.
    ;
    Kimmel, N.
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    Weidenspointner, G.
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    Hauser, G.
    ;
    Holl, P.
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    Pedersoli, E.
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    Liang, M.
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    Hunter, M. S.
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    Gumprecht, L.
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    Coppola, N.
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    Wunderer, C.
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    Graafsma, H.
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    Maia, F. R. N. C.
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    Ekeberg, T.
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    Hantke, M.
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    Fleckenstein, H.
    ;
    Hirsemann, H.
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    Nass, K.
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    White, T. A.
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    Tobias, H. J.
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    Farquar, G. R.
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    Benner, W. H.
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    Hau-Riege, S. P.
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    Reich, C.
    ;
    Hartmann, A.
    ;
    Soltau, H.
    ;
    Marchesini, S.
    ;
    Bajt, S.
    ;
    Barthelmess, M.
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    Bucksbaum, P.
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    Hodgson, K. O.
    ;
    Strüder, L.
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    Ullrich, J.
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    Frank, M.
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    Schlichting, I.
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    Chapman, H. N.
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    Bogan, M. J.
    The morphology of micrometre-size particulate matter is of critical importance in fields ranging from toxicology to climate science, yet these properties are surprisingly difficult to measure in the particles' native environment. Electron microscopy requires collection of particles on a substrate; visible light scattering provides insufficient resolution; and X-ray synchrotron studies have been limited to ensembles of particles. Here we demonstrate an in situ method for imaging individual sub-micrometre particles to nanometre resolution in their native environment, using intense, coherent X-ray pulses from the Linac Coherent Light Source free-electron laser. We introduced individual aerosol particles into the pulsed X-ray beam, which is sufficiently intense that diffraction from individual particles can be measured for morphological analysis. At the same time, ion fragments ejected from the beam were analysed using mass spectrometry, to determine the composition of single aerosol particles. Our results show the extent of internal dilation symmetry of individual soot particles subject to non-equilibrium aggregation, and the surprisingly large variability in their fractal dimensions. More broadly, our methods can be extended to resolve both static and dynamic morphology of general ensembles of disordered particles. Such general morphology has implications in topics such as solvent accessibilities in proteins, vibrational energy transfer by the hydrodynamic interaction of amino acids, and large-scale production of nanoscale structures by flame synthesis.
  • Some of the metrics are blocked by your 
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    Mesoscale morphology of airborne core–shell nanoparticle clusters: x-ray laser coherent diffraction imaging
    (2013)
    Pedersoli, E.
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    Loh, N. D.
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    Capotondi, F.
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    Hampton, C. Y.
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    Sierra, R. G.
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    Starodub, D.
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    Bostedt, C.
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    Bozek, J.
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    Nelson, A. J.
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    Aslam, M.
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    Li, S.
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    Dravid, V. P.
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    Martin, A. V.
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    Aquila, A.
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    Barty, A.
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    Fleckenstein, H.
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    Gumprecht, L.
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    Liang, M.
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    Nass, K.
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    Schulz, J.
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    White, T. A.
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    Coppola, N.
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    Bajt, S.
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    Barthelmess, M.
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    Graafsma, H.
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    Hirsemann, H.
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    Wunderer, C.
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    Epp, S. W.
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    Erk, B.
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    Rudek, B.
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    Rudenko, A.
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    Foucar, L.
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    Kassemeyer, S.
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    Lomb, L.
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    Rolles, D.
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    Shoeman, R. L.
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    Steinbrener, J.
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    Hartmann, R.
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    Hartmann, A.
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    Hauser, G.
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    Holl, P.
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    Kimmel, N.
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    Reich, C.
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    Soltau, H.
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    Weidenspointner, G.
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    Benner, W. H.
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    Farquar, G. R.
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    Hau-Riege, S. P.
    ;
    Hunter, M. S.
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    Ekeberg, T.
    ;
    Hantke, M.
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    Maia, F. R. N. C.
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    Tobias, H. J.
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    Marchesini, S.
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    Frank, M.
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    Strüder, L.
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    Schlichting, I.
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    Ullrich, J.
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    Chapman, H. N.
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    Bucksbaum, P. H.
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    Kiskinova, M.
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    Bogan, M. J.
  • Some of the metrics are blocked by your 
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    Nanoscale spin reversal by non-local angular momentum transfer following ultrafast laser excitation in ferrimagnetic GdFeCo
    (2013-04)
    Graves, C. E.
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    Reid, A. H.
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    Wang, T.
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    Wu, B.
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    de Jong, S.
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    Vahaplar, K.
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    Radu, I.
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    Bernstein, D. P.
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    Messerschmidt, M.
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    Müller, L.
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    Coffee, R.
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    Bionta, M.
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    Epp, S. W.
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    Hartmann, R.
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    Kimmel, N.
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    Hauser, G.
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    Hartmann, A.
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    Holl, P.
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    Gorke, H.
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    Mentink, J. H.
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    Tsukamoto, A.
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    Fognini, A.
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    Turner, J. J.
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    Schlotter, W. F.
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    Rolles, D.
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    Soltau, H.
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    Strüder, L.
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    Acremann, Y.
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    Kimel, A. V.
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    Kirilyuk, A.
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    Rasing, Th.
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    Stöhr, J.
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    Scherz, A. O.
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    Dürr, H. A.
    Ultrafast laser techniques have revealed extraordinary spin dynamics in magnetic materials that equilibrium descriptions of magnetism cannot explain. Particularly important for future applications is understanding non-equilibrium spin dynamics following laser excitation on the nanoscale, yet the limited spatial resolution of optical laser techniques has impeded such nanoscale studies. Here we present ultrafast diffraction experiments with an X-ray laser that probes the nanoscale spin dynamics following optical laser excitation in the ferrimagnetic alloy GdFeCo, which exhibits macroscopic all-optical switching. Our study reveals that GdFeCo displays nanoscale chemical and magnetic inhomogeneities that affect the spin dynamics. In particular, we observe Gd spin reversal in Gd-rich nanoregions within the first picosecond driven by the non-local transfer of angular momentum from larger adjacent Fe-rich nanoregions. These results suggest that a magnetic material's microstructure can be engineered to control transient laser-excited spins, potentially allowing faster (~ 1 ps) spin reversal than in present technologies.
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    Neoadjuvant rectal score as individual-level surrogate for disease-free survival in rectal cancer in the CAO/ARO/AIO-04 randomized phase III trial
    (2018)
    Fokas, E.
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    Fietkau, R.
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    Hartmann, A.
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    Hohenberger, W.
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    Grützmann, R.
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    Ghadimi, M.  
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    Liersch, T.  
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    Ströbel, P.  
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    Grabenbauer, G.G.
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    Graeven, U.
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    Hofheinz, R -D
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    Köhne, C -H
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    Wittekind, C.
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    Sauer, R.
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    Kaufmann, M.  
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    Hothorn, T.
    ;
    Rödel, C.
  • Some of the metrics are blocked by your 
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    Noise-robust coherent diffractive imaging with a single diffraction pattern
    (2012)
    Martin, A. V.
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    Wang, F.
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    Loh, N. D.
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    Ekeberg, T.
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    Maia, F. R. N. C.
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    Hantke, M.
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    van der Schot, G.
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    Hampton, C. Y.
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    Sierra, R. G.
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    Aquila, A.
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    Bajt, S.
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    Barthelmess, M.
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    Bostedt, C.
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    Bozek, J. D.
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    Coppola, N.
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    Epp, S. W.
    ;
    Erk, B.
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    Fleckenstein, H.
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    Foucar, L.
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    Frank, M.
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    Graafsma, H.
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    Gumprecht, L.
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    Hartmann, A.
    ;
    Hartmann, R.
    ;
    Hauser, G.
    ;
    Hirsemann, H.
    ;
    Holl, P.
    ;
    Kassemeyer, S.
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    Kimmel, N.
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    Liang, M.
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    Lomb, L.
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    Marchesini, S.
    ;
    Nass, K.
    ;
    Pedersoli, E.
    ;
    Reich, C.
    ;
    Rolles, D.
    ;
    Rudek, B.
    ;
    Rudenko, A.
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    Schulz, J.
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    Shoeman, R. L.
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    Soltau, H.
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    Starodub, D.
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    Steinbrener, J.
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    Stellato, F.
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    Strüder, L.
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    Ullrich, J.
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    Weidenspointner, G.
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    White, T. A.
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    Wunderer, C. B.
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    Barty, A.
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    Schlichting, I.
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    Bogan, M. J.
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    Chapman, H. N.
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    OC-0278: NAR score as surrogate for disease-free survival in the CAO/ARO/AIO-04 phase 3 rectal cancer trial
    (2018)
    Fokas, E.
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    Fietkau, R.
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    Hartmann, A.
    ;
    Hohenberger, W.
    ;
    Grützmann, R.
    ;
    Ghadimi, M.  
    ;
    Liersch, T.  
    ;
    Ströbel, P.  
    ;
    Grabenbauer, G.
    ;
    Wittekind, C.
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    Sauer, R.
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    Kaufmann, M.  
    ;
    Hothorn, T.
    ;
    Rödel, C.
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    PV-0325: Tumor Regression Grading in the CAO/ARO/AIO-04 phase 3 trial in locally advanced rectal carcinoma
    (2017)
    Fokas, E.
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    Ghadimi, M.  
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    Fietkau, R.
    ;
    Ströbel, P.  
    ;
    Hartmann, A.
    ;
    Sauer, R.
    ;
    Liersch, T.  
    ;
    Hothorn, T.
    ;
    Wittekind, C.
    ;
    Rödel, C.
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    Single-particle structure determination by correlations of snapshot X-ray diffraction patterns
    (2012)
    Starodub, D.
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    Aquila, A.
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    Bajt, S.
    ;
    Barthelmess, M.
    ;
    Barty, A.
    ;
    Bostedt, C.
    ;
    Bozek, J. D.
    ;
    Coppola, N.
    ;
    Doak, R. B.
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    Epp, S. W.
    ;
    Erk, B.
    ;
    Foucar, L.
    ;
    Gumprecht, L.
    ;
    Hampton, C. Y.
    ;
    Hartmann, A.
    ;
    Hartmann, R.
    ;
    Holl, P.
    ;
    Kassemeyer, S.
    ;
    Kimmel, N.
    ;
    Laksmono, H.
    ;
    Liang, M.
    ;
    Loh, N. D.
    ;
    Lomb, L.
    ;
    Martin, A. V.
    ;
    Nass, K.
    ;
    Reich, C.
    ;
    Rolles, D.
    ;
    Rudek, B.
    ;
    Rudenko, A.
    ;
    Schulz, J.
    ;
    Shoeman, R. L.
    ;
    Sierra, R. G.
    ;
    Soltau, H.
    ;
    Steinbrener, J.
    ;
    Stellato, F.
    ;
    Stern, S.
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    Weidenspointner, G.
    ;
    Frank, M.
    ;
    Ullrich, J.
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    Strüder, L.
    ;
    Schlichting, I.
    ;
    Chapman, H. N.
    ;
    Spence, J. C. H.
    ;
    Bogan, M. J.
    Diffractive imaging with free-electron lasers allows structure determination from ensembles of weakly scattering identical nanoparticles. The ultra-short, ultra-bright X-ray pulses provide snapshots of the randomly oriented particles frozen in time, and terminate before the onset of structural damage. As signal strength diminishes for small particles, the synthesis of a three-dimensional diffraction volume requires simultaneous involvement of all data. Here we report the first application of a three-dimensional spatial frequency correlation analysis to carry out this synthesis from noisy single-particle femtosecond X-ray diffraction patterns of nearly identical samples in random and unknown orientations, collected at the Linac Coherent Light Source. Our demonstration uses unsupported test particles created via aerosol self-assembly, and composed of two polystyrene spheres of equal diameter. The correlation analysis avoids the need for orientation determination entirely. This method may be applied to the structural determination of biological macromolecules in solution.
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    Status der Verfügbarkeit und Anwendung von „next generation sequencing“ (NGS) beim Harnblasenkarzinom – eine Umfrage in der Arbeitsgemeinschaft Uropathologie
    (2019)
    Ortiz-Brüchle, N.
    ;
    Muders, M.
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    Toma, M.
    ;
    Esposito, I.
    ;
    Hartmann, A.
    ;
    Stöhr, R.
    ;
    Reis, H.
    ;
    Wild, P.
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    Köllermann, J.
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    Bremmer, F.  
    ;
    Leichsenring, J.
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    Stenzinger, A.
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    Merkelbach-Bruse, S.
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    Kirfel, S.
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    Perner, S.
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    Hartmann, N.  
    ;
    Roth, W.
    ;
    Jung, A.
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    Kirchner, T.
    ;
    Schwamborn, K.
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    Pfarr, N.
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    Dahl, E.
    ;
    Knüchel, R.
    ;
    Gaisa, N. T.

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