Calibration procedure for a continuous miniature crystal element (cMiCE) detector

We report on methods to speed up the calibration process for a continuous miniature crystal element (cMiCE) detector. Our cMiCE detector is composed of a 50 mm by 50 mm by 8 mm thick LYSO crystal coupled to a 64-channel, flat panel photomultiplier tube (PMT). This detector is a lower cost alternative to designs that use finely pixilated individual crystal detectors. It achieves an average intrinsic spatial resolution of ~1.4 mm full width at half maximum (FWHM) over the useful face of the detector through the use of a statistics based positioning algorithm. A drawback to the design is the length of time it takes to calibrate the detector. We report on three methods to speed up this process. The first method is to use multiple point fluxes on the surface of the detector to calibrate different points of the detector from a single data acquisition. This will work as long as the point fluxes are appropriately spaced on the detector so that there is no overlap of signal. A special multi-source device that can create up to 16 point fluxes has been custom designed for this purpose. The second scheme is to characterize the detector with coarser sampling and use interpolation to create look up tables with the desired detector sampling (e.g., 0.25 mm). The intrinsic spatial resolution performance will be investigated for sampling intervals of 0.76 mm, 1.013 mm, 1.52 mm and 2.027 mm. The third method is to adjust the point flux diameter by varying the geometry of the setup. By bringing the coincidence detector array closer to the point source array both the spot size and the coincidence counting rate will increase. We will report on the calibration setup factor we are able to achieve while maintaining an average intrinsic spatial resolution of ~1.4 mm FWHM for the effective imaging area of our cMiCE detector.

[1]  S. Shokouhi,et al.  Effects of intercrystal crosstalk on multielement LSO/APD PET detectors , 2003 .

[2]  J. Karp,et al.  Thick continuous crystal design for PET , 2008, 2008 IEEE Nuclear Science Symposium Conference Record.

[3]  T. Lewellen,et al.  cMiCE: a high resolution animal PET using continuous LSO with a statistics based positioning scheme☆ , 2002 .

[4]  Peter Bruyndonckx,et al.  A high-resolution PET detector based on continuous scintillators , 2005 .

[5]  Néstor Ferrando,et al.  Depth of interaction detection for γ-ray imaging☆ , 2009 .

[6]  A. Sebastia,et al.  Scanner calibration of a small animal PET camera based on continuous LSO crystals and flat panel PSPMTs , 2007 .

[7]  R S Miyaoka,et al.  Depth of interaction decoding of a continuous crystal detector module , 2007, Physics in medicine and biology.

[8]  Peter Bruyndonckx,et al.  Investigation of an in situ position calibration method for continuous crystal-based PET detectors , 2007 .

[9]  T.K. Lewellen,et al.  Investigation of Depth of Interaction Decoding for a Continuous Crystal Detector , 2006, 2006 IEEE Nuclear Science Symposium Conference Record.

[10]  F. McGirt,et al.  Sudbury neutrino observatory neutral current detector acquisition software overview , 2004, IEEE Transactions on Nuclear Science.

[11]  T. Ling,et al.  Performance Comparisons of Continuous Miniature Crystal Element (cMiCE) Detectors , 2006, IEEE Transactions on Nuclear Science.

[12]  Peter Bruyndonckx,et al.  Towards a continuous crystal APD-based PET detector design , 2007 .