Side-Mounted Radiation Detector Array for High Time Resolution

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Solution Overview

Problem

Existing radiation detectors struggle to achieve high time resolution due to the configuration of scintillators and semiconductor photodetectors, where scintillation lights from opposing end surfaces are detected with significant time differences, leading to reduced accuracy in radiation entry detection.

Innovation Solution

A radiation detector design featuring a scintillator with end surfaces opposing each other and a semiconductor photodetector positioned on a side surface, where the scintillator is longer in one direction, and the photodetector is configured to detect scintillation lights directly and those reflected with minimal time difference, utilizing avalanche photodiodes in Geiger mode and quenching resistors to enhance light detection and reduce reflection attenuation.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Reliability

If the semiconductor photodetector is disposed on another end surface of the scintillator, then the scintillator can absorb radiation in the high energy range, but the time resolution deteriorates

Engineering Contradiction:
Improveradiation absorption reliabilityVSAvoidtime resolution
Core Design Contradiction:
ReliabilityVSLoss of time

Solution Approach 1:

The patent transitions from placing the photodetector on the end surface (one-dimensional approach) to placing it on the side surface (two-dimensional approach), changing the spatial dimension of detection. This allows simultaneous capture of scintillation lights from different paths without the large time differences that occur when detecting lights incident on opposite end surfaces

Inventive Principle:
Principle #17Another dimension (Dimensionality change)

Solution Approach 2:

The patent positions the photodetector specifically on the side surface rather than uniformly across all surfaces. This localized placement optimizes the detection of scintillation lights that pass through the scintillator body, capturing both directly incident and reflected lights with minimal time difference while maintaining reliable radiation absorption

Inventive Principle:
Principle #3Local quality

2Reliability

If the scintillator is longer in the first direction, then radiation absorption is improved, but the time difference between detecting scintillation lights increases

Engineering Contradiction:
Improveradiation absorptionVSAvoidtime difference
Core Design Contradiction:
ReliabilityVSLoss of time

Solution Approach 1:

By placing the photodetector on the side surface rather than the end surface, the patent changes the detection geometry. This allows the longer scintillator length in the first direction to be utilized for improved radiation absorption while the side surface detection captures scintillation lights with minimal time difference, as lights from different paths converge at the same detection point

Inventive Principle:
Principle #17Another dimension (Dimensionality change)

3Adaptability or versatility

If the semiconductor photodetector detects scintillation lights from multiple paths, then detection coverage is improved, but the time resolution deteriorates

Engineering Contradiction:
Improvedetection coverageVSAvoidtime resolution
Core Design Contradiction:
Adaptability or versatilityVSLoss of time

Solution Approach 1:

The patent positions the photodetector on the side surface where it can detect scintillation lights from multiple paths (directly incident and reflected lights) with minimal time difference. This localized placement provides broad detection coverage while maintaining high time resolution, as all detected lights arrive at the photodetector nearly simultaneously

Inventive Principle:
Principle #3Local quality

Solution Approach 2:

By moving the detection point to the side surface, the patent enables the photodetector to capture scintillation lights from various paths in the scintillator volume. This spatial repositioning allows simultaneous detection of multiple light paths without the large time differences that would occur with end surface detection

Inventive Principle:
Principle #17Another dimension (Dimensionality change)

Applied Scientific Principles

This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.

Function Achieved in This Case

This configuration enables high time resolution and increased light detection efficiency by minimizing time differences in detecting scintillation lights, thereby improving the accuracy of radiation entry detection.

Implementation Method 1

the scintillator generates a scintillation light in response to entry of radiation

Methodology Applied
Scientific EffectPhotoelectric effect: Photoelectric Effect

Implementation Method 2

a plurality of avalanche photodiodes arranged to operate in Geiger mode

Methodology Applied
Scientific EffectPhotoelectric effect: Photoelectric Effect

Implementation Method 3

a plurality of avalanche photodiodes arranged to operate in Geiger mode

Methodology Applied
Scientific EffectAvalanche breakdown: Avalanche Breakdown

Data Source

PatentUS20240405052A1Radiation detector and radiation detector array
Publication Date: 2024.12.05 HAMAMATSU PHOTONICS KK
  • US20240405052A1 patent drawing
  • US20240405052A1 patent drawing
  • US20240405052A1 patent drawing

AI summary

A radiation detector includes: a scintillator including a pair of end surfaces opposing each other in a first direction and one side surface coupling the pair of end surfaces; and a semiconductor photodetector including a semiconductor substrate. A length of the scintillator in the first direction is longer than a length of the scintillator in a second direction orthogonal to the one side surface. A length of the one side surface in the first direction is longer than a width of the one side surface in a third direction orthogonal to the first direction and the second direction. The semiconductor substrate includes a photodetection region disposed in a first portion and a first electrode and a second electrode disposed in a second portion. The photodetection region includes a plurality of avalanche photodiodes arranged to operate in Geiger mode and a plurality of quenching resistors.