IP Library › Granted Patent US 8,824,635
Granted Patent B2
US 8,824,635 · App. 13/283,373 · Granted Sep 2, 2014

Detector modules for imaging systems and methods of manufacturing

Inventors: John Eric Tkaczyk (Delanson, NY); Kevin Matthew Durocher (Waterford, NY); James Rose (Guilderland, NY); Haochuan Jiang (Brookfield, WI); Abdelaziz Ikhlef (Hartland, WI); Vladimir Lobastov (Waterford, NY); Daniel David Harrison (Delanson, NY)
Assignee: General Electric Company
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Quick Facts
Patent No.
US 8,824,635
App. No.
13/283,373
Filed
Oct 27, 2011
Granted
Sep 2, 2014
Kind
B2
Art Unit
2882
USPC
378/98.8
Abstract

Detector modules for an imaging system and methods of manufacturing are provided. One detector module includes a substrate, a direct conversion sensor material coupled to the substrate and a flexible interconnect electrically coupled to the direct conversion sensor material and configured to provide readout of electrical signals generated by the direct conversion sensor material. The detector module also includes at least one illumination source for illuminating the direct conversion sensor material.

Claims (30)

1. A detector module comprising:

a substrate;

a direct conversion sensor material coupled to the substrate;

a flexible interconnect electrically coupled to the direct conversion sensor material and configured to provide readout of electrical signals generated by the direct conversion sensor material; and

at least one illumination source for illuminating the direct conversion sensor material, wherein the illumination source is one of coupled or embedded in the substrate.

2. The detector module of claim 1 , wherein the illumination source is configured to illuminate a cathode side of the direct conversion sensor material.

3. The detector module of claim 1 , wherein the illumination source is configured to illuminate an anode side of the direct conversion sensor material.

4. The detector module of claim 1 , wherein the substrate is coupled between the direct conversion sensor material and the flexible interconnect.

5. The detector module of claim 4 , wherein an anode side of the direct conversion sensor material is coupled to the substrate.

6. The detector module of claim 5 , wherein the flexible interconnect is coupled between the substrate and one or more application application-specific integrated circuits (ASICs).

7. The detector module of claim 4 , wherein a cathode side of the direct conversion sensor material is coupled to the substrate.

8. The detector module of claim 1 , wherein the flexible interconnect is coupled between the substrate and the direct conversion sensor material.

9. The detector module of claim 8 , wherein a support structure is coupled to the direct conversion sensor material on an opposite side to the flexible interconnect.

10. The detector module of claim 1 , further comprising spacers coupled to the substrate and having gaps therebetween and wherein the illumination source is coupled to or embedded in the substrate in the gaps.

11. The detector module of claim 1 , wherein the illumination source is configured to illuminate a perimeter sidewall area of the direct conversion sensor material.

12. The detector module of claim 1 , wherein the direct conversion sensor material comprises one of Cadmium Telluride (CdTe) or Cadmium Zinc Telluride (CZT).

13. The detector module of claim 1 , wherein the direct conversion sensor material is configured to detect one of x-rays or gamma rays.

14. An imaging system comprising:

an x-ray source for generating x-rays;

a detector module for detecting x-rays generated by the x-ray source after passing through an object, the detector module having detector elements formed from a direct conversion sensor material and having at least one illumination source for illuminating the direct conversion sensor material, the direct conversion sensor material generating analog electrical signals in response to received x-rays, the detector module converting the analog signals to digital signals, wherein the illumination source is pulsed to mimic absorbed x-rays or gamma-rays received by the direct conversion sensor material; and

a processor for reconstructing an image of the object using the digital signals.

15. The imaging system of claim 14 , wherein the detector module further comprises a flexible interconnect electrically coupled to the direct conversion sensor material and configured to provide readout of the analog electrical signals generated by the direct conversion sensor material.

16. The imaging system of claim 14 , wherein the illumination source is configured by the processor to provide real time calibration of the response of the detector module.

17. The imaging system of claim 14 , wherein the illumination source is pulsed to have a temporal period of between about 1 to 1000 nanoseconds and an amplitude of between about 0.02 to 20 microamps.

18. The imaging system of claim 14 , wherein the illumination source is configured to illuminate a perimeter sidewall area of the direct conversion sensor material.

19. A method for manufacturing a detector module, the method comprising:

coupling a direct conversion sensor material to at least one of processing or communication circuitry;

providing at least one illumination source at a perimeter sidewall area of the direct conversion sensor material to illuminate the direct conversion sensor material; and

providing at least one of a support or thermal stabilization coupled to the direct conversion sensor material to form the detector module.

20. The method of claim 19 , further comprising coupling the detector module to an imaging system.

Assignments (2)
NUNC PRO TUNC ASSIGNMENT Recorded May 8, 2025
From: GENERAL ELECTRIC COMPANY
To: GE PRECISION HEALTHCARE LLC
Reel/Frame 071225/0218 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2011
From: TKACZYK, JOHN ERIC; DUROCHER, KEVIN MATTHEW; ROSE, JAMES; JIANG, HAOCHUAN; IKHLEF, ABDELAZIZ; LOBASTOV, VLADIMIR; HARRISON, DANIEL DAVID
To: GENERAL ELECTRIC COMPANY
Reel/Frame 027135/0780 →
Continuity (1)
Related Publication 20130108019A1 · May 2, 2013