Lithographically defined polymeric lenses in a micromachined waveguide replace GRIN optics to resolve resolution and size contradictions.
A photonic crystal fiber with non-uniform hole distribution limits propagation modes while expanding the core area for high-power light transmission.
Integrating reinforcement members into the jacket matrix eliminates separate aramid yarn layers, simplifying connectorization and enabling automation.
A hollow-core fiber microprobe delivers laser radiation through a focusing tip.
A dual-color coating method applies primary and secondary UV curable acrylate layers in a single pass to optical fibers.
Knit footwear embeds optical fibers to deliver targeted photobiomodulation, resolving comfort and reliability trade-offs.
Asymmetric noncircular optical fibers eliminate air gaps during assembly, ensuring uniform light output.
A preform structure uses a central support tube to secure structural glass tubes within an outer cladding.
Structure-forming fiber with preferentially-etchable portions creates precise optical structures via controlled chemical etching.
A photonic guiding device uses a large core hollow waveguide with reflective cladding to route optical signals efficiently.
Optimizing embedded particle size and refractive index minimizes scattering loss, enabling polymer waveguides to achieve glass fiber performance levels.
A display device uses longitudinally staggered sub-pixel columns and segmented electrodes to form a liquid crystal grating.
A core glass in the alkali-zinc-silicate system guides light with low attenuation and high chemical resistance.
Acoustic antiguiding fiber configuration increases stimulated Brillouin scattering threshold.
Thermal coupling between a single thermoelectric cooler and multiple components reduces system complexity while maintaining precise wavelength control.
Triboluminescent optical fiber sensor emits light under mechanical stress to detect structural damage in composite materials.
A thermally-responsive filling substance reduces viscosity by 70% to protect optical fibers from mechanical shock.
High refractive index domes confine leaked light from lossy junctions, minimizing insertion loss and back-reflections in dense fiber arrays.
Dynamic fiber vibration creates varying bend radii that excite all modes, reducing modal noise and transmission losses.
A light-transmissive tube and shielding cap isolate the optical fiber end to manage thermal loads in high-power illumination systems.
Transferring gratings from donor substrates enables individual repair and flexible assembly architectures without replacing the entire combiner.
Replacing bulky guides with a 100-micrometer film reduces device thickness while maintaining illumination intensity through curved surfaces.
Thermally conductive and photorefractive materials cover mismatched fiber connections to suppress temperature increases and release leakage light.
Selective aperture shielding reduces electrostatic discharge vulnerability while minimizing wavelength spectrum variation in the light emitting element array.
Slanted end faces align multi-core fiber cores to minimize connection losses and reduce reflection at the interconnection interface.
Insulated pipe zones manage cooling rates to reduce transmission loss in optical fiber production.
Corrugated UV acrylate matrix reduces cable diameter while maintaining splicing efficiency.
A holographic display device uses spatial light modulation to generate three-dimensional images for augmented reality viewing.
An intermediary calcium fluoride end cap prevents moisture deliquescence on exposed optical fiber surfaces while enabling thermal conduction to cooling plates.
Localized high tension compensates for limited free path length to reduce polarization-mode dispersion while maintaining winding stability.
Intentional hydrogen darkening creates a wavelength-selective filter that removes absorption artifacts, improving temperature reading reliability.
Pre-etching a substrate pedestal creates air gaps around the hollow core, lowering waveguide loss by one order of magnitude compared to solid-clad designs.
A fiber optic sensor arrangement uses phase modulation with pseudorandom binary sequences to convert optical carrier signals into intensity variations for detection.
Higher spacer density in corner portions far from the injection port prevents plastic deformation of ultra-thin glass substrates during vacuum encapsulation.
High-viscosity polymer gel prevents capillary wicking into nanostructure voids, maintaining optical performance in mechanical splices.
A surface acoustic wave diffractive modulator steers light using wavelength and RF frequency control.
A polyamide molding compound sheathes optical fibers with specific copolyamide ratios.
A negative angle grating coupler enables passive alignment between a laser and photonic integrated circuit.
Reference optical fiber corrects wavelength drift in distributed acoustic sensing interrogators, ensuring accurate acoustic energy measurements.
A convex spherical incident surface on an optical waveguide focuses incoming signals to improve propagation.
Segmented doping prevents core contamination while minimizing Rayleigh scattering to achieve transmission losses below 0.18 dB/km at 1550 nm.
Segmented waveguide cores reduce insertion loss and cross-talk by minimizing light scattering at multi-level crossings.
An embedded fiber optic cable detects pan segment shape changes to identify joint faults, reducing operator fatigue and preventing operational disruptions.
A strained waveguide resonator applies voltage to modulate the refractive index via the Pockels effect for dynamic wavelength tuning.
An optical fiber system monitors vehicle electrical network temperatures using distributed sensing sections.
An asymmetric gap configuration in a Y branch circuit reduces excess loss below 0.1 dB by narrowing the space at the over clad side during thermal processing.
A germanium Schottky barrier photodetector absorbs optical signals across 220 to 1600 nm using a thick active layer and mesa structure.
Specific liquid epoxy resin balances flexibility and glass transition temperature, preventing core infiltration during roll-to-roll processing.