IP Library Granted Patent US 9,442,261
Granted Patent B2
US 9,442,261 · App. 14/326,923 · Granted Sep 13, 2016

Devices for coupling a light-emitting component and a photosensing component

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Quick Facts
Patent No.
US 9,442,261
App. No.
14/326,923
Granted
Sep 13, 2016
Kind
B2
Abstract

A radiation detector is provided including a photosensor, a scintillator, and a light guide arranged between the scintillator and the photosensor and configured to guide light from the scintillator to the photosensor, the light guide including a nano-composite that includes nanoparticles that determine a refractive index of the nano-composite. The nano-composite includes a polymer material and the nano-particles, wherein the nano-particles are uniformly distributed throughout the polymer material so that the refractive index of the nano-composite is uniform throughout the nano-composite. Alternatively, the nano-particles are distributed throughout the polymer material so that the refractive index of the nano-composite is equal to the refractive index of the photosensor at a first boundary of the nano-composite that contacts the photosensor, is equal to the refractive index of the scintillator at a second boundary of the nano-composite that contacts the scintillator, and varies uniformly throughout the nano-composite between the first and second boundaries.

Claims (12)

1. A radiation detector, comprising:

a photosensor;

a scintillator; and

a light guide arranged between the scintillator and the photosensor and configured to guide light from the scintillator to the photosensor, the light guide comprising a nano-composite that includes nano-particles that determine a refractive index of the nano-composite, wherein the refractive index of the nano-composite is substantially equal to the geometric mean of a refractive index of the scintillator and a refractive index of the photosensor.

2. The radiation detector of claim 1 , wherein nano-composite includes a polymer material and the nano-particles, wherein the nano-particles are uniformly distributed throughout the polymer material so that the refractive index of the nano-composite is uniform throughout the nano-composite.

3. The radiation detector of claim 1 , wherein an average particle size of the nano-particles is less than 50 nm.

4. The radiation detector of claim 1 , further comprising a primer to strengthen a bond between the nano-composite and the photosensor, and a primer to strengthen a bond between the nano-composite and the scintillator.

5. A radiation detector, comprising:

a photosensor;

a scintillator; and

a light guide arranged between the scintillator and the photosensor and configured to guide light from the scintillator to the photosensor, the light guide comprising a nano-composite that includes nano-particles that determine a refractive index of the nano-composite,

wherein the nano-composite includes a polymer material and the nano-particles, wherein the nano-particles are distributed throughout the polymer material so that the refractive index of the nano-composite is equal to the refractive index of the photosensor at a first boundary of the nano-composite that contacts the photosensor, is equal to the refractive index of the scintillator at a second boundary of the nano-composite that contacts the scintillator, and varies uniformly throughout the nano-composite between the first and second boundaries.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 23, 2016
From: KABUSHIKI KAISHA TOSHIBA
To: TOSHIBA MEDICAL SYSTEMS CORPORATION
Reel/Frame 039133/0915 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 4, 2014
From: WANG, JERRY
To: KABUSHIKI KAISHA TOSHIBA; TOSHIBA MEDICAL SYSTEMS CORPORATION
Reel/Frame 033454/0604 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 1, 2014
From: WANG, JERRY
To: KABUSHIKI KAISHA TOSHIBA; TOSHIBA MEDICAL SYSTEMS CORPORATION
Reel/Frame 033442/0753 →