Published November 2002 | Version v1
Journal article

A novel silicon array designed for intraoperative charged particle imaging

  • 1. Division of Nuclear Medicine and Biophysics, Department of Molecular and Medical Pharmacology, UCLA School of Medicine, Los Angeles, California 90095 (United States)
  • 2. Photon Imaging, Inc., 19355 Business Center Drive, Suite 8, Northridge, California 91324 (United States)
  • 3. Department of Biomedical Engineering, Duke University, Durham, North Carolina 27710 (United States)
  • 4. Section of Nuclear Medicine, Department of Radiology, Duke University Medical Center (United States)

Description

A novel Si-PIN imaging array is under investigation for a charged particle (beta, positron, or alpha) sensitive intraoperative camera to be used for (residual) tumor identification during surgery. This class of collimator-less nuclear imaging device has a higher signal response for direct interactions than its scintillator-optical detector-based counterparts. Monte Carlo simulations with 635 keV betas were performed, yielding maximum and projected ranges of 1.64 and 0.55 mm in Si. Up to 90% of these betas were completely absorbed in the first 0.30 mm. Based on these results, 300 μm thick prototype Si detector arrays were designed in a 16x16 crossed-grid arrangement with 0.8 mm wide orthogonal strips on 1.0 mm pitch. A NIM- and CAMAC-based high-density data acquisition and processing system was used to collect the list mode data. The system was calibrated by comparisons of measured spectra to energy deposition simulations or by direct measurement of various >100 keV conversion electron or beta emitters. Mean electronic noise per strip was <3.6 keV FWHM at room temperature. When detecting positrons, which have an accompanying 511 keV annihilation background, the flood irradiated beta/gamma ratio was ∼40, indicating that beta images could be made without the use of background rejection techniques. The intrinsic spatial resolution corresponds to the 1x1 mm2 pixel size, and measurements of beta emitting point and line sources yielded FWHM resolutions of 1.5 (lateral) and 2.5 mm (diagonal), respectively, with the larger widths due to particle range blurring effects. Deconvolution of the finite source size yielded intrinsic resolutions that corresponded to the image pixel size. Transmission images of circle and line phantoms with various hole sizes and pitch were resolved with either pure beta or positron irradiation without a background correction. This novel semiconductor imaging device facilitates high charged particle and low gamma sensitivity, high signal/noise ratio, and allows for compact design to potentially aid surgical guidance by providing in situ images of clinical relevance

Additional details

Identifiers

Publishing Information

Journal Title
Medical Physics
Journal Volume
29
Journal Issue
11
Journal Page Range
p. 2529-2540
ISSN
0094-2405
CODEN
MPHYA6

INIS

Country of Publication
United States
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
35004111
Subject category
S62: RADIOLOGY AND NUCLEAR MEDICINE;
Descriptors DEI
BIOMEDICAL RADIOGRAPHY; CALIBRATION; GAMMA CAMERAS; LABELLING; METABOLISM; NEUTRON CAMERAS; NUCLEAR MEDICINE; POSITRON CAMERAS; RADIATION DETECTORS; SURGERY
Descriptors DEC
CAMERAS; DIAGNOSTIC TECHNIQUES; GAMMA CAMERAS; MEASURING INSTRUMENTS; MEDICINE; NUCLEAR MEDICINE; RADIOLOGY

Optional Information

Notes
(c) 2002 American Association of Physicists in Medicine.