Monochromatic Mammographic Imaging Using X-Ray Polycapillary Optics

Abstract

Monochromatic imaging is typically done with synchrotron sources. These sources are expensive and not practical for clinical settings. However, conventionaI laboratory sources normally have insufficient intensity. Polycapillary x-ray optics can be used to efficiently produce an intense parallel beam, which can be diffracted from a crystal to create monochromatic radiation. Monochromatic parallel beam imaging produces high subject contrast, high resolution, and low patient dose. Contrast, resolution, and intensity measurements were performed with both high and low angular acceptance crystals. Testing was first done at 8 keV with an intense copper rotating anode source. Preliminary l7.5 kev measurements were then made with a molybdenum source. At 8 keV, contrast enhancement was a factor of five relative to the polychromatic case, in good agreement with theoretical values. At l7.5 kev, monochromatic subject contrast was a factor of two times greater than the conventional polychromatic contrast. The measured angular resolution with a silicon crystal is 0.6 mrad at 8 keV, and 0.2 - 0.3 mrad at 17.5 keV. For a 50-mm thick patient, this angle corresponds to 50 lp/mm with an ideal detector. The use of polychromatic collimating optics allow monochromatic mammographic imaging measurements with a conventional x-ray source in a practical clinical setting.

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Document Details

Document Type
Technical Report
Publication Date
Jun 01, 2002
Accession Number
ADA407379

Entities

People

  • Francisca Sugiro

Organizations

  • State University of New York at Albany

Tags

Communities of Interest

  • Biomedical
  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Agreements
  • Computer Programs
  • Computer Simulations
  • Computers
  • Detectors
  • Graphitic Materials
  • High Resolution
  • Language
  • Mammography
  • Materials
  • New York
  • Physics
  • Radiation
  • Standards
  • Training
  • X Ray Optics
  • X Rays

Fields of Study

  • Physics

Readers

  • Medical Imaging.
  • Nuclear and Radiation Engineering.
  • Pulsed Power and Plasma Physics.