Literature DB >> 18552422

Spatial resolution limits for synchrotron-based spectromicroscopy in the mid- and near-infrared.

Erika Levenson1, Philippe Lerch, Michael C Martin.   

Abstract

Spatial resolution tests were performed on beamline 1.4.4 at the Advanced Light Source in Berkeley, CA, USA, a third-generation synchrotron light source. This beamline couples the high-brightness synchrotron source to a Thermo-Electron Continumicrom XL infrared microscope. Two types of resolution tests were performed in both the mid-IR and near-IR. The results are compared with a diffraction-limited spot size theory. At shorter near-IR wavelengths the experimental results begin to deviate from diffraction-limited so a combined diffraction-limit and electron-beam-source-size model is employed. This description shows how the physical electron beam size of the synchrotron source begins to dominate the focused spot size at higher energies. The transition from diffraction-limited to electron-beam-size-limited performance is a function of storage-ring parameters and the optical demagnification within the beamline and microscope optics. The discussion includes how different facilities, beamlines and microscopes will affect the achievable spatial resolution. As synchrotron light sources and other next-generation accelerators such as energy-recovery LINACs and free-electron lasers achieve smaller beam emittances, beta-functions and/or energy spreads, diffraction-limited performance can continue to higher-energy beams, perhaps ultimately into the extreme ultraviolet.

Year:  2008        PMID: 18552422     DOI: 10.1107/S0909049508004524

Source DB:  PubMed          Journal:  J Synchrotron Radiat        ISSN: 0909-0495            Impact factor:   2.616


  1 in total

1.  3D spectral imaging with synchrotron Fourier transform infrared spectro-microtomography.

Authors:  Michael C Martin; Charlotte Dabat-Blondeau; Miriam Unger; Julia Sedlmair; Dilworth Y Parkinson; Hans A Bechtel; Barbara Illman; Jonathan M Castro; Marco Keiluweit; David Buschke; Brenda Ogle; Michael J Nasse; Carol J Hirschmugl
Journal:  Nat Methods       Date:  2013-08-04       Impact factor: 28.547

  1 in total

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