Claims
- 1. A system for the detection of nuclear radiation in the presence of backgrounds, said system comprising:
a plurality of MIP sensitive scintillators configured from a plurality of nano-sized particles and a plastic material, wherein each of said MIP sensitive scintillators includes a central hole thereof; a wavelength-shifting fiber located within said hole, wherein said wavelength-shifting fiber absorbs scintillation light having a wavelength thereof and remits said light at a longer wavelength to indicate the presence of at least one minimum ionizing particle.
- 2. The system of claim 1 wherein said plurality of MIP sensitive scintillators comprises a pair of MIP sensitive scintillators.
- 3. The system of claim 1 further comprising:
a first scintillator layer comprising a plurality of pairs of said MIP sensitive scintillators, wherein an MIP deposits energy with a triangular pair thereof; a second scintillator layer comprising a plurality of neutron-sensitive scintillators, wherein said second scintillator layer is sensitive to neutron interactions such that any event within said second scintillator signals the detection of at least one neutron; and a third scintillator layer comprising a plurality of x-ray sensitive scintillators, wherein said third scintillator layer is sensitive to x-ray interactions such that any event within said third scintillator signals the detection of at least one x-ray.
- 4. The system of claim 1 further comprising
a photodetector associated with said wavelength-shifting fiber, wherein data are generated, which are indicative of MIP detection.
- 5. The system of claim 1 further comprising
compounding means for compounding said plurality of heavy element nano-sized particles into said plastic material in association with at least one dopant that permits said plastic material to scintillate in response to x-ray interactions thereof.
- 6. The system of claim 1 wherein said plastic material comprises at least one of the following: polystyrene powder or polyvinyltoluene powder.
- 7. The system of claim 1 wherein said plastic material comprises at least one of the following: polystyrene pellets or polyvinyltoluene pellets.
- 8. The system of claim 1 wherein two hits within said plurality of MIP sensitive scintillators signals an MIP event.
- 9. The system of claim 1 wherein two hits within said plurality of MIP sensitive scintillators signals a cosmic ray event.
- 10. A system for the detection of nuclear radiation in the presence of backgrounds said system comprising:
a plurality of MIP sensitive scintillators configured from a plurality of scintillator dopants and a plastic material, wherein said plurality of MIP sensitive scintillators comprises a pair of MIP sensitive scintillators, wherein each of said MIP sensitive scintillators includes a central hole thereof; a wavelength-shifting fiber located within said hole, wherein said wavelength-shifting fiber absorbs scintillation light having a wavelength thereof and remits said light at a longer wavelength to indicate the presence of at least one minimum ionizing particle; a first scintillator layer comprising a plurality of pairs of said MIP sensitive scintillators, wherein an MIP deposits energy within a pair thereof; a second scintillator layer comprising a plurality of neutron-sensitive scintillators, wherein said second scintillator layer is sensitive to neutron interactions such that any event within said second scintillator signals the detection of at least one neutron; and a third scintillator layer comprising a plurality of x-ray sensitive scintillators, wherein said third scintillator layer is sensitive to x-ray interactions such that any event within said third scintillator signals the detection of at least one x-ray.
- 11. A method for the detection of nuclear radiation in the presence of backgrounds said method comprising the steps of:
forming a plurality of MIP sensitive scintillators from a plurality of scintillator dopants and a plastic material, wherein each of said MIP sensitive scintillators includes a central hole thereof; locating a wavelength-shifting fiber within said hole, wherein said wavelength-shifting fiber absorbs scintillation light having a wavelength thereof and remits said light at a longer wavelength to indicate the presence of at least one minimum ionizing particle.
- 12. The method of claim 11 further comprising the step of:
configuring said plurality of MIP sensitive scintillators to comprise a pair MIP sensitive scintillators.
- 13. The method of claim 11 further comprising the steps of:
forming a first scintillator layer comprising a plurality of pairs of said MIP sensitive scintillators; forming a second scintillator layer comprising a plurality of neutron-sensitive scintillators, wherein said second scintillator layer is sensitive to neutron interactions such that any event within said second scintillator signals the detection of at least one neutron; and forming a third scintillator layer comprising a plurality of x-ray sensitive scintillators, wherein said third scintillator layer is sensitive to x-ray interactions such that any event within said third scintillator signals the detection of at least one x-ray.
- 14. The method of claim 11 further comprising the step of:
associating a photodetector with said wavelength-shifting fiber, wherein data is generating data indicative of MIP detection.
- 15. The method of claim 11 wherein the step of forming a plurality of MIP sensitive scintillators from a plurality of scintillator dopants and a plastic material, further comprises the step of:
compounding said plurality of scintillator dopants into said plastic material that permits said plastic material to scintillate in response to MIP interactions thereof.
- 16. The method of claim 11 wherein said plastic material comprises at least one of the following: polystyrene powder or polyvinyltoluene powder.
- 17. The method of claim 11 wherein said plastic material comprises at least one of the following: polystyrene pellets or polyvinyltoluene pellets.
- 18. The method of claim 11 wherein two hits within said plurality of MIP sensitive scintillators signals at least one of the following: an MIP event or a cosmic ray event.
- 19. The method of claim 11 wherein two hits within said plurality of MIP-sensitive scintillators comprises at least two layers of MIP-sensitive scintillators, wherein one of said at least two layers of MIP-sensitive scintillators is offset one-half the width of the other of said at least two layers of MIP-sensitive scintillators.
- 20. The method of claim 11 further comprising the step of:
extruding each MIP sensitive scintillator of said plurality of triangularly shaped MIP sensitive scintillator to thereby form an MIP-sensitive scintillator profile thereof.
STATEMENT OF GOVERNMENT INTEREST
[0001] The United States Government has rights in this invention pursuant to Contract No. DE-AC02-76CH03000 between the U.S. Department of Energy and the University Research Association.