IP Library Granted Patent US 10,121,818
Granted Patent B2
US 10,121,818 · App. 15/215,246 · Granted Nov 6, 2018

Quantum dot digital radiographic detection system

Inventor: Leigh E. Colby (Eugene, OR)
Assignee: OREGON DENTAL, INC.
H01L27/14663B82Y15/00G01T1/208G01T1/2018H01L27/14629H01L31/028H01L31/035218B82Y20/00Y10S977/774Y10S977/954
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Quick Facts
Patent No.
US 10,121,818
App. No.
15/215,246
Granted
Nov 6, 2018
Kind
B2
Abstract

A digital quantum dot radiographic detection system described herein includes: a scintillation subsystem 202 and a semiconductor light detection subsystem 200, 200 ′ (including a plurality of quantum dot image sensors 200 a, 200 b ). In a first preferred digital quantum dot radiographic detection system, the plurality of quantum dot image sensors 200 is in substantially direct contact with the scintillation subsystem 202 . In a second preferred digital quantum dot radiographic detection system, the scintillation subsystem has a plurality of discrete scintillation packets 212 a, 212 b , at least one of the discrete scintillation packets communicating with at least one of the quantum dot image sensors. The quantum dot image sensors 200 may be associated with semiconductor substrate 210 made from materials such as silicon (and variations thereof) or graphene.

Claims (34)

1. A digital quantum dot radiographic detection system comprising:

(a) a scintillation subsystem that converts X-ray ionizing radiation into luminescent light;

(b) a semiconductor light detection subsystem having a semiconductor substrate and a plurality of quantum dot image sensors, said quantum dot image sensors detecting said light from said scintillation subsystem and converting said light into at least one electronic signal; and

(c) said plurality of quantum dot image sensors is in substantially direct contact with said scintillation subsystem.

2. The system of claim 1 wherein said semiconductor substrate is a quantum dot semiconductor substrate.

3. The system of claim 1 wherein said scintillation subsystem comprises a plurality of discrete scintillation packets, at least one of said discrete scintillation packets communicating with at least one of said quantum dot image sensors.

4. The system of claim 1 wherein said scintillation subsystem comprises a plurality of discrete scintillation packets, said plurality of quantum dot image sensors and said plurality of discrete scintillation packets being heterogeneous, at least one of said discrete scintillation packets communicating with an appropriate at least one of said quantum dot image sensors.

5. The system of claim 1 wherein said scintillation subsystem comprises a plurality of discrete scintillation packets, at least one of said discrete scintillation packets communicating with at least one of said quantum dot image sensors, and an optically opaque layer being positioned between said discrete scintillation packets.

6. The system of claim 1 wherein said scintillation subsystem comprises a plurality of discrete scintillation packets, said plurality of quantum dot image sensors and said plurality of discrete scintillation packets being heterogeneous, at least one of said discrete scintillation packets communicating with an appropriate at least one of said quantum dot image sensors, and an optically opaque layer being positioned between said discrete scintillation packets.

7. The system of claim 1 wherein said scintillation subsystem comprises a plurality of discrete scintillation packets, at least one of said discrete scintillation packets communicating with at least one of said quantum dot image sensors, and an optically opaque lateral layer with optical retroflectors positioned opposite said quantum dot image sensors.

8. The system of claim 1 wherein said scintillation subsystem comprises a plurality of discrete scintillation packets, said plurality of quantum dot image sensors and said plurality of discrete scintillation packets being heterogeneous, at least one of said discrete scintillation packets communicating with an appropriate at least one of said quantum dot image sensors, and an optically opaque lateral layer with optical retroflectors positioned opposite said quantum dot image sensors.

9. The system of claim 1 wherein said scintillation subsystem comprises a plurality of discrete scintillation packets, at least one of said discrete scintillation packets communicating with at least one of said quantum dot image sensors, an optically opaque layer being positioned between said discrete scintillation packets, and an optically opaque lateral layer with optical retroflectors positioned opposite said quantum dot image sensors.

10. The system of claim 1 wherein said scintillation subsystem comprises a plurality of discrete scintillation packets, said plurality of quantum dot image sensors and said plurality of discrete scintillation packets being heterogeneous, at least one of said discrete scintillation packets communicating with an appropriate at least one of said quantum dot image sensors, an optically opaque layer being positioned between said discrete scintillation packets, and an optically opaque lateral layer with optical retroflectors positioned opposite said quantum dot image sensors.

11. The system of claim 1 wherein said scintillation subsystem is positioned between an X-ray source and said plurality of quantum dot image sensors.

12. The system of claim 1 further comprising:

(a) an image processing subsystem having a computational device capable of receiving said at least one electronic signal and storing said at least one electronic signal on an electronic medium; and

(b) said computational device capable of retrieving and displaying said at least one electronic signal at a concurrent or later time as a diagnostic image.

13. The system of claim 1 , said scintillation subsystem comprising a plurality of discrete scintillation packets, at least one of said discrete scintillation packets being in substantially direct contact with and in communication with an associated at least one of said quantum dot image sensors.

14. The system of claim 1 , said scintillation subsystem comprising a plurality of discrete scintillation packets, at least one of said discrete scintillation packets in substantially direct contact with and in communication with an associated at least one of said quantum dot image sensors, each said quantum dot image sensor being optimized to a peak output of a scintillation chemistry of its associated discrete scintillation packet.

15. The system of claim 1 , said scintillation subsystem comprising a plurality of discrete scintillation packets, at least one of said discrete scintillation packets in substantially direct contact with and in communication with an associated at least one of said quantum dot image sensors, each said quantum dot image sensor being optimized to a peak output of a scintillation chemistry of its associated discrete scintillation packet, wherein different types of optimized quantum dot image sensor and associated discrete scintillation packet combinations provide images having a high resolution and contrast.

16. The system of claim 1 wherein said semiconductor substrate is made from graphene.

17. A digital quantum dot radiographic detection system comprising:

(a) a scintillation subsystem that converts X-ray ionizing radiation into luminescent light;

(b) a semiconductor light detection subsystem having a semiconductor substrate and a plurality of quantum dot image sensors, said quantum dot image sensors detecting said light from said scintillation subsystem and converting said light into at least one electronic signal; and

(c) said scintillation subsystem being a plurality of discrete scintillation packets, at least one of said discrete scintillation packets communicating with at least one of said quantum dot image sensors.

18. The system of claim 17 wherein said semiconductor substrate is a quantum dot semiconductor substrate.

19. The system of claim 17 wherein said plurality of quantum dot image sensors and said plurality of discrete scintillation packets are heterogeneous, at least one of said discrete scintillation packets communicating with an appropriate at least one of said quantum dot image sensors.

20. The system of claim 17 further comprising an optically opaque layer positioned between said discrete scintillation packets.

21. The system of claim 17 further comprising an optically opaque lateral layer with optical retroflectors positioned opposite said quantum dot image sensors.

22. The system of claim 17 further comprising an optically opaque layer being positioned between said discrete scintillation packets and an optically opaque lateral layer with optical retroflectors positioned opposite said quantum dot image sensors.

23. The system of claim 17 , at least one of said discrete scintillation packets being in substantially direct contact with and in communication with an associated at least one of said quantum dot image sensors.

24. The system of claim 17 , each said quantum dot image sensor being optimized to a peak output of a scintillation chemistry of its associated discrete scintillation packet.

25. The system of claim 17 , each said quantum dot image sensor being optimized to a peak output of a scintillation chemistry of its associated discrete scintillation packet, wherein different types of optimized quantum dot image sensor and associated discrete scintillation packet combinations provide images having a high resolution and contrast.

26. The system of claim 17 wherein said semiconductor substrate is made from graphene.

Assignments (2)
CHANGE OF ADDRESS Recorded Jan 13, 2023
From: OREGON DENTAL, INC.
To: OREGON DENTAL, INC.
Reel/Frame 062387/0718 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 14, 2016
From: COLBY, LEIGH E.
To: OREGON DENTAL, INC.
Reel/Frame 040024/0554 →
Continuity (7)
Continuation 14690280 · Apr 17, 2015
Continuation PCTUS2013031813 · Mar 15, 2013
Continuation In Part 13184469 · Jul 15, 2011
Continuation In Part 15215246
Continuation In Part 13184469
Provisional Application 61364448 · Jul 15, 2010
Related Publication 20160329373A1 · Nov 10, 2016