Reconstructed exit waves are useful to quantify unknown structure parameters such as the position and composition of the atom columns at atomic scale. Existing techniques provide a complex wave in a flat plane which is close to the plane where the electrons leave the atom columns. However, due to local deviation in the flatness of the exit surface, there will be an offset between the plane of reconstruction and the actual exit of a specific atom column. Using the channelling theory, it has been shown that this defocus offset can in principle be determined atom column-by-atom column. As such, the surface roughness could be quantified at atomic scale. However, the outcome strongly depends on the initial plane of reconstruction especially in a crystalline structure. If this plane is further away from the true exit, the waves of the atom columns become delocalized and interfere mutually which strongly complicates the interpretation of the exit wave in terms of the local structure. In this paper, we will study the delocalization with defocus using the channelling theory in a more systematic way.
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http://dx.doi.org/10.1016/j.ultramic.2011.04.005 | DOI Listing |
Elife
December 2024
Institute of Bioengineering, Swiss Federal Institute of Technology in Lausanne EPFL, Lausanne, Switzerland.
Rhythmic and sequential segmentation of the growing vertebrate body relies on the segmentation clock, a multi-cellular oscillating genetic network. The clock is visible as tissue-level kinematic waves of gene expression that travel through the presomitic mesoderm (PSM) and arrest at the position of each forming segment. Here, we test how this hallmark wave pattern is driven by culturing single maturing PSM cells.
View Article and Find Full Text PDFSensors (Basel)
November 2024
MOE Key Laboratory of Fundamental Physical Quantities Measurement and Hubei Key Laboratory of Gravitation and Quantum Physics, PGMF and School of Physics, Huazhong University of Science and Technology, Wuhan 430074, China.
Sci Rep
November 2024
China Ship Scientific Research Center, National Key Laboratory Of Hydrodynamics, Wuxi, 214000, China.
Gas curtain launch is an innovative method for underwater gun firing that enhances efficiency by creating a gas curtain. This gas curtain interacts with post-projectile gas and the surrounding water, resulting in a complex multiphase flow field at the muzzle, which significantly impacts projectile accuracy. To investigate the evolution of this flow field, a three-dimensional numerical model was developed, focusing on the distribution of shock waves, temperature, and pressure at the muzzle.
View Article and Find Full Text PDFSci Rep
October 2024
Institute of Seismological Research, Government of Gujarat, Gandhinagar, Gujarat, 382009, India.
Characterization of a productive oil/gas well blowout through seismological methods is relatively uncommon. In this paper, we conduct an in-depth seismic evaluation of one of the world's most significant onshore oil well blowout incidents, which occurred in 2020 at the Baghjan oil field in Assam, northeast India. We show that the blowout and related on-site activities generated distinct signals that can be distinguished by their spectral characteristics, temporal variation in geometric spreading, and sharp attenuation of daytime noise in comparison to the nighttime.
View Article and Find Full Text PDFJ Health Organ Manag
September 2024
University of South Australia, Adelaide, Australia.
Purpose: The aim of the study was to compare the explanatory power of the dissatisfaction-based account of aged care employee turnover against that of Lee and Mitchell's (1994) unfolding theory of turnover.
Design/methodology/approach: Mixed method prospective cohort study with three waves of employee survey data and an exit interview drawn from employees of a large Australian not-for-profit aged care provider. Independent tests and mediated logistic regression analyses were conducted.
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