By Peter W. Hawkes
Advances in Imaging & Electron Physics merges long-running serials-Advances in Electronics & Electron Physics and Advances in Optical & Electron Microscopy. The sequence positive factors prolonged articles at the physics of electron units (especially semiconductor devices), particle optics at low and high energies, microlithography, photo technological know-how and electronic photo processing, electromagnetic wave propagation, electron microscopy, and the computing tools utilized in these kind of domains.
- Contributions from major professionals
- Informs and updates on all of the most up-to-date advancements within the field
Read or Download Advances in Imaging and Electron Physics, Volume 186 PDF
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Advances in Imaging and Electron Physics merges long-running serials--Advances in Electronics and Electron Physics and Advances in Optical and Electron Microscopy. This sequence positive aspects prolonged articles at the physics of electron units (especially semiconductor devices), particle optics at low and high energies, microlithography, snapshot technological know-how and electronic picture processing, electromagnetic wave propagation, electron microscopy, and the computing tools utilized in these kinds of domain names.
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Extra resources for Advances in Imaging and Electron Physics, Volume 186
2012). Using thinner windows for STEM will result in a minor improvement of the spatial resolution and a better signal-to-noise-ratio, but it also causes an increase in practical difﬁculties. For example, focusing will be more difﬁcult as a consequence of the increased bulging of the thinner window. 2a). The resolution is typically limited by broadening of the energy spread of the beam in the liquid layer above the sample (inelastic scattering), leading to chromatic aberration (de Jonge & Ross, 2011).
Microscopy and Microanalysis, 20, 425–436. , & Tanaka, N. (2004). Development of microcapsules for electron microscopy and their application to dynamical observation of liquid crystals in transmission electron microscopy. Nanotechnology, 15, S329–S332. , & Sato, C. (2010). Atmospheric scanning electron microscope observes cells and tissues in open medium through silicon nitride ﬁlm. Journal of Structural Biology, 169, 438–449. , & Alivisatos, A. P. (2013). Revealing bismuth oxide hollow nanoparticle formation by the Kirkendall effect.
Zhang, L. , Mao, S. , Hudak, N. , Liu, X. , & Li, J. (2010). In situ observation of the electrochemical lithiation of a single SnO2 nanowire electrode. Science, 330, 1515–1520. , Hermansson, A. , & Olsson, E. (2014). Novel method for visualizing water transport through phase-separated polymer ﬁlms. Microscopy and Microanalysis, 20, 394–406. , & Molhave, K. (2014). Monolithic chip system with a microﬂuidic channel for in situ electron microscopy of liquids. Microscopy and Microanalysis, 20, 445–451.
Advances in Imaging and Electron Physics, Volume 186 by Peter W. Hawkes