Piezoelectric actuators tune coupled ring resonators in a photonic molecule, eliminating magnetic materials and enabling CMOS-compatible optical isolation.
Rhombus lattice unit cells compensate polarization differences to deliver uniform color output across the field of view in augmented reality displays.
An integrated package combines dichroic beam merging with dedicated beam dumps to absorb stray energy, reducing system weight and thermal load.
A backlight device uses light absorbers and retro-reflectors to control bright rings around individual LEDs.
A semiconductor light receiver integrates a light absorbing layer with p-type and n-type contact regions on a single substrate to reduce epitaxial growth steps.
Monotonic filter arrangement along a bus waveguide eliminates optical isolators and stabilizes sensitive active elements against harmful back-reflections.
Graphene waveguides detect plasmons through ohmic contacts and hydrodynamic rectification, eliminating cryogenic requirements.
A silicon-on-insulator optical bandpass filter uses a multimode interference coupler to direct light through wavelength-sensitive reflectors.
Protrusions on a guide panel align with holes in a top case to secure brackets, preventing distortion and damage from external forces.
A microring filter calibration method selects minimal drive voltages to establish resonant reference points for optical power detection.
Relocating assembly protrusions to a main support prevents light leakage at the light guide plate periphery while maintaining device compactness.
A planar optical waveguide circuit incorporates a 2x2 multi-mode interference coupler as an in-line tap to split modulated light signals.
Alternating heating modes stabilize resonance peaks in multi-resonant optoelectronic devices while reducing power consumption.
Varying curve parameters of elongated microstructures optimizes luminous efficiency by correcting uneven light distribution in backlight modules.
Laterally projecting tapers on the light-absorbing layer suppress back reflection and improve responsivity stability in photonic chips.
Depressed layers in the backlight unit prevent particle infiltration and ensure uniform light emission for thin displays.
A reflection plate redirects light through an attenuating plate to suppress local luminance decreases on the display panel.
Graded-index profiles in curved waveguides correct total internal reflection errors, reducing beam distortion in head-mounted displays.
A dual sealing tape seals the gap between case and storage unit in liquid crystal displays, preventing particle entry that causes black dot defects.
A backlight unit integrates a quantum dot bar fastened to a supporting frame and light source member.
An optical arrangement uses a gradient refractive index distribution across lenticular lenses to minimize cross-talk and pixel overlap at steep viewing angles.
Interferometer polarization beam combiner suppresses wavelength dependency by generating refractive index dispersion between waveguides.
A multi-channel furcation tube organizes optical fiber strands within a single unit to simplify connectorization.
Segmented positioning structures mechanically fix optical films to light guiding plates, preventing adhesive contamination of the view region.
A compact optical channel monitor uses a MEMS mirror to direct beams onto a grism for spectral separation.
A light shielding member attached to the diffusion plate blocks stray light from LED gaps.
Convolution compensation adjusts laser intensity profiles to eliminate refractive index mismatches and reduce optical losses in waveguides.
Optical sheet extensions engage receiving member portions to maintain precise location while accommodating heat expansion.
A pluggable variable optical attenuator uses modular housing and pre-aligned fiber interfaces to maintain system synchronization during insertion.
Integrated optomechanical resonator probe couples mechanical and optical vibration modes to resolve transduction capacity loss during miniaturization.
A high-voltage bushing uses perforated conductive layers to accelerate matrix material penetration through a spiral-wound core.
A display module bonds the lightguide directly to the rear substrate using double-sided adhesive foil.
A reflective surface redirects light between transmitting and receiving lenses within a single optical fiber path.
A color conversion panel uses scattering particles to redirect blue light horizontally through quantum dots.
Segmented storage trays reduce distribution frame complexity by enabling tool-free access to pre-connectorized fiber optic cables.
A segmented optical waveguide uses a single heating element to modulate light across perpendicular segments.
A liquid crystal display chassis conducts heat from the light source to maintain slim device profiles.
Segmenting the optical guide into smaller components reduces manufacturing difficulty while expanding the head-up display field of view.
A Mach-Zehnder interferometric optical modulator uses a reverse mesa phase shift region to reduce contact resistance.
A segmented back plate design reduces display device thickness using a thinner sub-back plate.
Stacked edge type light source modules perform brightness compensation on leakage regions to resolve non-smooth image edges without increasing drive complexity.
Sliding spool tracks maintain minimum bend radius while storing slack cable in compact volumes.
Stacked sheets with 35 μm peak-to-peak distances eliminate Newton-rings and rainbows without an upper diffusion sheet.
A remote tether release apparatus enables single-operator control over fiber optic cable assemblies using solenoid-activated mechanisms.
Highly rare-earth doped fiber arrays integrate Faraday rotation within the waveguide structure to enable robust all-fiber isolator designs.
A compact dual-waveguide optical phase modulator structure with semiconductor-insulator-semiconductor capacitors.
A sliding cable management bracket adjusts arm spacing to secure telecommunications cables on varying rack depths.