A display panel uses a moisture-proof member in an organic insulating film slit to protect wiring lines.
A pixel common transistor connects adjacent electrode lines to stabilize voltage during display operation.
Segmented pixel electrodes generate horizontal and vertical electric fields to orient liquid crystal molecules for adjustable viewing angles.
A particle constrained layer with varying void ratios allows charged particles to move in the thickness direction while preventing in-plane drift.
Crossed waveguides equalize optical loss and modulation efficiency to eliminate phase chirp caused by mask misalignment.
A second organic layer fills concave parts in an inorganic sealing film to create a planar surface for touch electrodes.
A porous oriented film absorbs frame adhesive impurities to prevent display area contamination.
Layered conductive films with edge-exposing contact holes prevent short-circuits caused by insulating film coverage defects, enhancing aperture ratio.
A transflecting polarizing element maximizes light transmission and reflectance to reduce image washout during high ambient lighting conditions.
Light-blocking patterns in a viewing angle control film block stray light outside the set viewing region, preventing repetitive images on curved 3D displays.
A meta-surface structure layer deflects light from a peripheral display area into a non-display region.
Spaced vertical sub-trunks in the pixel electrode reduce color shift during skin-tone display by controlling molecular inclination.
Segmented apertures in the reflector sheet fix LEDs and reserve gaps for thermal expansion, preventing deformation that causes uneven light reflection.
Bumped second passivation layer enhances light reflection while single photo mask process reduces manufacturing complexity.
Segmented light flux controlling members eliminate luminance unevenness across high and low output regions in surface light sources.
Segmented pixel electrodes create distinct liquid crystal tilt angles, improving side visibility without reducing the aperture ratio or transmittance.
UV curing creates a macromolecular network anchoring negative liquid crystals, enabling TN and IPS modes without complex alignment treatments.
A louver combined with a liquid crystal lens element controls light emission direction and divergence within a display device.
Magnetic bars rotate to form slits perpendicular to opposing polarizers, resolving under-screen camera shading.
Segmented cavities with density-graded fluids enable rapid fluid flow to resolve slow response speed and low brightness in electrowetting displays.
Overlapping signal lines on opposite gate insulating layer sides enable UV light exposure for seal curing.
Electrode cutouts create fringe fields to orient liquid crystal molecules, eliminating alignment aid curing steps and reducing manufacturing complexity.
Direct ITO coating on LCD front plates merges heating with structural components, reducing weight and optical losses from external heaters.
A viewing angle control element uses an electrolyte layer and transparent electrode to form light-shielding layers for switching between wide and narrow modes.
Lowering cladding refractive index below the InP core value increases field overlap and modulation efficiency despite material compatibility constraints.
Grooves in the first transparent electrode layer separate drive and non-drive regions, enabling complex designs while maintaining electrical conductivity.
Floating electrodes on the second substrate cooperate with primary common and pixel electrodes to generate a secondary electric field.
A backlight module uses enhanced LED lamps at coupling positions to improve light mixing efficiency.
Angled minute branches on flexible substrates prevent texture from upper and lower panel misalignment during bending.
Patterned light shielding layer on a display panel support plate utilizes ink-jet printing to deposit functional material.
Non-transparent substrate eliminates harmful reflection to achieve dark absorptive states in interferometric modulators.
An extension portion of the black matrix layer blocks angular light paths between adjacent color filters, reducing off-axis color shift.
A lattice-shaped auxiliary common line eliminates the black matrix to resolve light leakage while increasing aperture ratio and reducing manufacturing costs.
Precise lateral spacing between column spacers and contact holes eliminates alignment defects and gap stains in high resolution liquid crystal displays.
A color conversion panel integrates a spacer with partitioning walls to maintain a constant gap between the display and conversion layers.
Transparent electrode design merges organic film formation with existing mask patterns to simplify manufacturing steps.
Textured glass substrates resolve the trade-off between optical clarity and tactile feel by applying abrasion and etching processes.
An asymmetric polymer substrate configuration balances stress distribution to prevent electrode breakage and improve surface flatness.
Preliminary spectral broadening and inversion of the processing sequence boost output power while maintaining measurement precision.
Patterned columnar spacers replace discrete beads to resolve manufacturing precision trade-offs, ensuring uniform cell thickness and consistent handwriting.
Thicker rear polarizing film generates convex curvature, preventing backlight contact.
Curved liquid crystal display substrates eliminate distance deviation from the viewer by maintaining uniform surface geometry across the entire panel area.
A liquid crystal shutter component uses multiple retardation layers to enhance light transmittance and shielding states.
Differentiated sealant widths reduce corner light leakage by aligning optical axes and minimizing substrate traction.
A dual-layered black matrix structure combines metal and resin to increase optical density.
Segmented common electrode slits align liquid crystal molecules, reducing texture defects and preserving transmittance during substrate bonding.
Dual cholesteric liquid crystal layers with dichroic dye achieve high transmittance and contrast by switching between transparent and opaque states.
A flexible plastic substrate matches thermal expansion coefficients with polymeric layers to prevent warpage in display devices.
Solid-state nanocomposite films using TCO nanostructures and lithium salts enable dynamic near-infrared control without liquid electrolyte leakage.