Principles of Electron Optics, Volume 1

- Basic Geometrical Optics

  • Format
  • Bog, paperback
  • Engelsk

Beskrivelse

Volume one of Principles of Electron Optics: Basic Geometrical Optics, Second Edition, explores the geometrical optics needed to analyze an extremely wide range of instruments: cathode-ray tubes; the family of electron microscopes, including the fixed-beam and scanning transmission instruments, the scanning electron microscope and the emission microscope; electron spectrometers and mass spectrograph; image converters; electron interferometers and diffraction devices; electron welding machines; and electron-beam lithography devices. The book provides a self-contained, detailed, modern account of electron optics for anyone involved with particle beams of modest current density in the energy range up to a few mega-electronvolts. You will find all the basic equations with their derivations, recent ideas concerning aberration studies, extensive discussion of the numerical methods needed to calculate the properties of specific systems and guidance to the literature of all the topics covered. A continuation of these topics can be found in volume two, Principles of Electron Optics: Applied Geometrical Optics. The book is intended for postgraduate students and teachers in physics and electron optics, as well as researchers and scientists in academia and industry working in the field of electron optics, electron and ion microscopy and nanolithography.

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  • Vægt1500 g
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    10 cm
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    19,1 cm
    23,4 cm

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    Coma Detectors Lenses Astigmatism Interpolation Differential algebra Image converters OPTIMIZATION Numerical differentiation Hamilton Jacobi equation Hamilton's principle Computer-Algebra Constraints Finite elements Mops Mass spectrometers Distortion Eccentricity Green's function Euler-Lagrange equations Electron beam lithography Coordinate Systems Boundary Element Method Distortions Charge density distribution Maxwell's equations Cartesian method Conservation laws Focal Length Multipoles Aberration discs Aberration integrals Acceleration potential Aberration Coefficients Achromatic electrostatic-magnetic quadrupoles Angular Magnification Aperture aberrations Cardinal elements Chromatic aberration of distortion Cartesian representation Combination aberrations Asymptotic aberration coefficients Chromatic Aberration Chromatic aberrations Deflection aberrations Deflectors Differential equations for aberrations Canonical formalism Cartesian Approach Electrostatic cylindrical lenses Cathode lenses Chaplet aberration Doublets Explicit series expansions Elimination or compensation of aberrations Eikonal method Field symmetries Electron mirror microscope Conventional electrostatic and magnetic lenses Fox-Goodwin-Numerov High-magnification situation Field Curvature First-order perturbations Gauge transformations Deflection sensitivity Grid choice Interpolation and the finite-element method Eikonal theory Lens combinations Electrostatic lenses Lagrange Function Magnetic and mixed cylindrical lenses Existence of asymptotes Magnetic lenses Finite-difference relations Laminated lenses Matrix Representation Fehlberg Load characteristic Geometrical aberrations Modified temporal method Organization of the subject orthogonal systems Nodal points Object and image focus Geometrical aberration Imperfect systems Herschel's condition Longitudinal Magnification Lorentz Equations Magnetic flux components Integral-equation method Inversion of principal planes Isotropic response Nomenclature and notation Osculating cardinal elements Over-relaxation Mirror aberrations Nine-point formula Mirror-based analysers

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