Daniel Parks
Lawrence Berkeley National Laboratory
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Publication
Featured researches published by Daniel Parks.
Optics Express | 2015
Nicolas Burdet; Xiaowen Shi; Daniel Parks; Jesse N. Clark; Xiaojing Huang; Stephen D. Kevan; Ian K. Robinson
Coherent X-ray Diffraction Imaging (CDI) and X-ray ptychography both heavily rely on the high degree of spatial coherence of the X-ray illumination for sufficient experimental data quality for reconstruction convergence. Nevertheless, the majority of the available synchrotron undulator sources have a limited degree of partial coherence, leading to reduced data quality and a lower speckle contrast in the coherent diffraction patterns. It is still an open question whether experimentalists should compromise the coherence properties of an X-ray source in exchange for a higher flux density at a sample, especially when some materials of scientific interest are relatively weak scatterers. A previous study has suggested that in CDI, the best strategy for the study of strong phase objects is to maintain a high degree of coherence of the illuminating X-rays because of the broadening of solution space resulting from the strong phase structures. In this article, we demonstrate the first systematic analysis of the effectiveness of partial coherence correction in ptychography as a function of the coherence properties, degree of complexity of illumination (degree of phase diversity of the probe) and sample phase complexity. We have also performed analysis of how well ptychographic algorithms refine X-ray probe and complex coherence functions when those variables are unknown at the start of reconstructions, for noise-free simulated data, in the case of both real-valued and highly-complex objects.
Applied Physics Letters | 2011
Keoki Seu; S. Roy; Run Su; Daniel Parks; Erik Shipton; Eric E. Fullerton; S. D. Kevan
We have used resonant, coherent soft x-ray scattering to measure wave vector re- solved magnetic domain memory in Co/Pd multilayers. The technique uses angular cross correlation functions and can be applied to any system with circular annuli of constant values of scattering wave vector q. In our Co/Pd film, the memory exhibits a maximum at q = 0.0384 nm-1 near initial reversal that decreases in magnitude as the magnetization is further reversed. The peak is attributed to bubble domains that nucleate reproducibly near initial reversal and which grow into a labyrinth domain structure that is not reproduced from one magnetization cycle to the next.
Nature Photonics | 2011
S. Roy; Daniel Parks; Keoki Seu; R. Su; J. J. Turner; Weilun Chao; E. H. Anderson; S. Cabrini; S. D. Kevan
Physical Review Letters | 2011
J. J. Turner; Xiaojing Huang; O. Krupin; Keoki Seu; Daniel Parks; S. D. Kevan; E. Lima; Kim Kisslinger; Ian McNulty; Richard Gambino; Stephane Mangin; S. Roy; Peter Fischer
Physical Review Letters | 2011
Run Su; Keoki Seu; Daniel Parks; Jimmy J. Kan; Eric E. Fullerton; S. Roy; S. D. Kevan
Bulletin of the American Physical Society | 2015
James Lee; Xiaowen Shi; Jordan Chess; Sergio Montoya; Shrawan Mishra; Lev Sakharov; Daniel Parks; Ben McMorran; S. D. Kevan; Eric E. Fullerton; S. Roy
Bulletin of the American Physical Society | 2014
Xiaowen Shi; James Lee; Shrawan Mishra; Daniel Parks; Tolek Tyliszczak; David J. Shapiro; S. Roy; Steve Kevan
Bulletin of the American Physical Society | 2012
Oleg Krupin; J. J. Turner; Xiaojing Huang; Keoki Seu; Daniel Parks; S. D. Kevan; E. Lima; K. Kisslinger; Ian McNulty; R. Gambino; S. Mangin; S. Roy; Peter Fischer
Bulletin of the American Physical Society | 2012
Daniel Parks; Keoki Seu; Run Su; Eric E. Fullerton; Erik Shipton; S. Roy; Steve Kevan
Bulletin of the American Physical Society | 2011
Run Su; S. Roy; Keoki Seu; Daniel Parks; Jimmy J. Kan; Eric E. Fullerton; S. D. Kevan