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Spectroscopy, Diffraction and Tomography in Art and Heritage Science

Editat de Mieke Adriaens, Mark Dowsett
en Limba Engleză Paperback – 6 iul 2021
Spectroscopy, Diffraction and Tomography in Art and Heritage Science gives an overview of the main spectroscopy and diffraction techniques currently available for cultural heritage research. It starts with an introductory, general discussion of spectroscopy and diffraction and the kinds of information they can give. Further sections deal with, respectively, typical laboratory methods, mobile equipment, and large-scale instruments and infrastructural methods. The work concludes with comments on combining and comparing multiple techniques, sources of error, and limitations of the analytical methods.


  • Explains spectroscopy and diffraction techniques in detail, yet remains accessible to those without a chemistry or physics background
  • Provides explanations of commonly used terms, such as destructive, non-destructive, non-invasive, in-situ, and ex-situ, and their sometimes-misleading origins
  • Includes real-world examples that demonstrate how each technique is used in the field
  • Highlights the complementary use of different analytical techniques in fully interpreting the data
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Specificații

ISBN-13: 9780128188606
ISBN-10: 012818860X
Pagini: 406
Ilustrații: 174 illustrations (24 in full color)
Dimensiuni: 191 x 235 x 28 mm
Greutate: 0.69 kg
Editura: ELSEVIER SCIENCE

Public țintă

Researchers in analytical chemistry or chemical analysis of art, cultural heritage researchers, conservators, curators, and archeologists learning how to apply analytical techniques to their research

Cuprins

1. Introduction: Origins and Fundamentals
2. Raman and infrared spectroscopy
3. Spectroscopy and diffraction using the electron microscope
4. UV – visible and near IR reflectance spectroscopy
5. X-Ray and Neutron Tomagraphies
6. X-ray diffraction
7. Laser induced breakdown spectroscopy
8. Neutron Diffraction
9. Laboratory and synchrotron X-ray spectroscopy
10. Ion beam analysis
11. High energy particle analysis