A notched film adhesive with edge projections stabilizes substrate-to-element bonding while preserving close device spacing.
GOS and glass-based scintillators combine frequency-weighted signals to improve DQE while limiting spatial resolution loss.
A configurable switching matrix adapts digital processing across pixel groups for flexible X-ray imaging and efficient resource use.
A surrounding third electrode creates a graded electric field that gathers peripheral charges and expands the sensitive region.
A programmable current source applies neutralizing charge to reduce dark-current distortion and preserve active imaging area.
Segmented columnar-crystal panels expand detection area while preserving image resolution.
Continuous adhesive joins adjacent columnar-crystal panels to expand detection area while preserving radiological image resolution.
Wavelength-shifting sheets improve light collection and uniformity in X-ray detectors.
Base stations, tags, and posture sensors align a movable radiographic detector with the radiation source to reduce image distortion.
This case spaces light-receiving regions and uses optical filtering to limit cross-talk and improve radiation energy resolution.
A trained model simplifies radiation detector soundness checks, enabling faster abnormality detection and maintenance planning.
A movable detector uses base-station signals and posture sensing to match its position with the radiation source across imaging positions.
A controllable switch and delay circuit reset the feedback capacitor to limit ballistic deficit during high-rate photon counting.
This case uses conductive-coated plastic housings and sealed enclosures to balance low weight, EMI shielding, and ingress protection.
An offset unit calibrates detecting and comparing circuits in situ, compensating threshold and gain variations before photon measurement.
This radiation detection case measures transferred energy before estimating the Cherenkov angle, improving particle position accuracy.
Edge positioning keeps warped imaging plates against the support while limiting shadow obstruction.
A thallium-containing layer and diffusion-limiting alloy protect TlBr electrodes, sustaining electrical readout and SN ratio.
Dual reading circuits adapt photoelectric detection to low and high X-ray dosages, balancing precision and quantum efficiency.
A thickness-separated wiring layout keeps GND noise from the radiation detector, reducing image unevenness and false radiation detection.
Threshold filtering removes noise before energy integration for accurate radiation measurement.
A PET detector uses depth-dependent reflector transparency and paired photosensors to measure DOI without sacrificing TOF resolution.
Split gate COF and FPCB layouts compact X-ray detectors for close-contact imaging.
Silica films on columnar crystals improve radiation and moisture resistance while preserving light output and spatial resolution.
Compton event filtering cuts transmitted data and computer load in radiation analysis.
This case combines active airflow, filter collection, and semiconductor detection for fast radon measurement in compact systems.
This scintillation cuvette uses refractive-index zones and total reflection to guide light efficiently to detectors for accurate spectra.
Flexible support and protective panels let the detector conform to curved pipes while maintaining close-contact imaging stability.
A layered oxide and nitride insulator stack limits hole trapping under radiation.
Mixed-size pixels, slit apertures, and absorbers help photon counting detectors handle wide flux ranges with improved accuracy.
This case uses cross-linked metallic alkoxide protection and a resin-metallic reflection layer to improve MTF sharpness.
Segmented layers with distinct light guide orientations enable real-time dose measurement, resolving the trade-off between high precision and system complexity.
Composite housing materials prevent corrosion in portable radiation imaging devices during harsh disinfection cycles.
Segmented acquisition and readout phases reduce dead time, resolving signal pileup at high photon rates.
Segmented reinforcing substrate excludes terminal-facing regions to suppress heat-induced deformation while maintaining bending stiffness.
A radiation detector uses distinct organic and inorganic protective films to bond the scintillator layer and moisture-proof body to the array substrate.
A method determines background count rate using external standard spectra and predefined reference curves.
Peripheral stand-offs maintain a minimum gap between the fiber optic plate and imaging sensor to reduce shear stress.
A diamond-based sensor isolates micro-sensitive volumes with non-electrically active material to prevent charge diffusion.
Counting non-scattered photons within a defined time window corrects geometry-dependent collection effects to enhance energy measurement precision.
Illuminating an X-ray detector sensor with variable intensity light pulses to determine its polarization state.
An intermediate symmetrization region bridges the active core and periphery to eliminate edge effects while maintaining near-maximum efficiency.
Digitizing analog signals enables rejection of spurious noise and charge sharing artifacts, improving spectrometric response accuracy.
Hexagonal sensors reduce capacitance and noise to resolve non-uniform uncertainty in gamma ray detector intrinsic resolution.
Segmented electrode pixels with steering elements reduce pulse width and polarization effects in direct conversion photon counting detectors.
A multiplexed connection circuit routes detection signals across adjacent channel groups to precise particle localization.
Correlation products from simultaneous detector signals identify moving radioactive sources, reducing false alarms caused by independent thresholding.
A radiation detector uses a conversion device to trigger a MEMS switch, storing exposure data in a latched state for later interrogation.
Optical bleaching releases captured charge carriers from scintillator defects, improving time resolution without thermal damage.