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Images were acquired with an iXon Ultra electron multiplying charge-coupled device (EMCCD) camera (512×512 pixels) (Andor Technology) and images were processed using MetaMorph (Molecular Devices).
Mapping was done with a CAMECA SX100 Ultra electron microprobe (Department of Planetary Sciences, University of Arizona) operating at 20 keV and 20 nA, and equipped with wavelength dispersive spectrometry (WDS) detectors.
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The aim of this chapter is to review the prospects for the development and practical introduction of ultra small electron devices, including nanoscale field-effect transistors (FETs) and single-electron transistors (SETs), as well as new concepts for nanometer-scalable memory cells.
The unique architecture creates ultra fast electron transfer and electrolyte transport.
The instrument is equipped with two cameras: a pco.edge scientific complementary metal-oxide semiconductor (sCMOS) camera for structured illumination microscopies and an Andor Ixon Ultra 987 electron multiplying charged coupled device (EMCCD) camera for TIRF, STORM/PALM, and other time-lapse imaging.
XPS spectra were recorded with a Kratos Axis Ultra DLD electron spectrometer using a monochromated Al Kα source operated at 150 W, a hybrid lens system with magnetic lens providing an analysis area of 0.3 mm × 0.7 mm, and a charge neutralizer.
The deglycosylated peptides were separated and analyzed on a Shimadzu UFLC system coupled to a LTQ-FT Ultra (Thermo Electron, Bremen, Germany).
XPS spectra were recorded using a Kratos Axis Ultra DLD electron spectrometer (Kratos Analytical) equipped with a monochromated Al Kα x-ray source operating at 150 W, a hybrid lens system including magnetic lenses and with a charge neutraliser [77].
Samples were imaged on a FESEM ULTRA 55 electron microscope (Carl Zeiss Microscopy, Thornwood, NY) in STEM mode at a voltage of 30 kV.
The tryptic peptide digests were separated using HPLC (Ultimate 3000, Dionex; Amsterdam, Netherlands) equipped with a linear Ion Trap (LTQ FT Ultra, Thermo Electron; Bremen, Germany) mass spectrometer.
New ultra-short electron bunch diagnostic techniques will be developed hand in hand with the same ultra-fast laser technology to be used for LCLS.
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