Polarization imaging corrects anisotropic Cerenkov signals to deliver real-time, high-resolution radiation dose measurement without secondary scintillators.
Scintillating fibers replace time-consuming dosimetric gels to enable real-time 3D dose mapping without perturbing the radiation field.
A transversely positioned UV or white light LED probes a sensitive optical fiber core to detect temperature and chemical species with high spatial resolution.
A disc-collimated detector assembly centers within nuclear piping to view radiation from a specific cylindrical segment of holdup deposits.
Spectroscopy system classifies tissue samples by processing chromophore spectra and estimating Z-scores for immediate diagnostic assessment.
Non-orthogonal signal traces reduce path lengths in silicon photomultipliers, improving timing resolution and coincidence detection accuracy.
A luminescent composition uses an emission modifier to switch between distinct optical responses under identical excitation radiation.
A depth calculator analyzes specific wavelength images to determine object position within a substance.
Non-periodic sensing arrays generate time-varying waveforms that enhance signal-to-noise ratios for weakly fluorescing cells.
Miniature optically stimulated luminescence detectors on a flexible cable map radiation in curved ducts without dismantling.
Dual-wavelength imaging corrects diffuse reflection in fluorescent nuclear track detectors, resolving accuracy losses at high doses.
Copper lithium heptaborate phosphors emit visible light without overlapping thermal noise, eliminating complex corrections in three-dimensional dosimetry.
A single collecting light guide merges optical energy from multiple scintillating elements into one channel.
A portable optically stimulated luminescence reader uses a microprocessor to control an LED light source and photon counting for dose determination.
Fluorescent nanoparticles enable on-line measurement of individual layer thicknesses in composite structures using a single sensor.
Segmenting detection into two sensors resolves saturation in pulsed fields while maintaining measurement accuracy across varying radiation intensities.
Segmented detector elements with copper foils resolve energy-dependent errors, delivering accurate and angle-independent dose measurement from 10 keV to 10 MeV.
Silica glass fibres carry luminescent signals from moisture-resistant beads to resolve data loss in high-dose radiation environments.
Metal halide decomposition quenches dye fluorescence, enabling remote detection without complex photomultiplier equipment.
A deformable dosimeter uses radio-luminescent elements to detect radiation dose within a phantom structure.
A calibration system pre-exposes image plates to establish a baseline exposure level for accurate radiation detection.
Segmenting the housing from the fastener protects the measuring element from damage while maintaining simple attachment to the carrying device.
A dosimeter scattering body uses segmented assemblies with alignment devices to improve measurement precision.
A wearable dosimeter uses removable optically stimulated luminescent and fluorescent nuclear track detectors for radiation monitoring.
Trigger detectors provide signals to adjust encoding processes, resolving insufficient bandwidth from static pattern environments.
A logic element adjusts light emission from a luminescent material using an inverse correlation between decay times and signal pulses.
A sample observation apparatus modulates excitation light spatial intensity to generate super-resolution image data.