A graphene electrode modulator uses direct chemical vapor deposition to lower contact resistance.
Dual light blocking members with distinct apertures prevent stray light interference while concealing the camera peripheral area.
A support frame with a concave groove holds a light-transmitting structure to deliver illumination directly to edge pixels.
A liquid crystal display uses a cruciform stem electrode to control light transmittance.
A detection unit merges green and white pixel paths using a shared second short-circuit line to enable lighting tests.
Mark regions with parallel aligning marks on thin film transistor substrates enable controlled frame sealant application.
Stepped retardation layers compensate for electrode gap regions, eliminating optical retardation deviations and ensuring smooth parabolic phase distribution.
Superposed semi-elliptical tabs join bezel pieces, reducing deformation risk and material usage.
Adjustable connecting assembly with U-shaped holes compensates for assembly errors to maintain consistent black matrix width.
An insulation layer isolates the electrically-conductive layer from the common electrode in liquid crystal display panels.
Prismatic film redirects light laterally to hide sources, resolving thickness and optical loss trade-offs in direct-lit backlights.
Staggered buffer layers prevent peeling and cracking at the boundary, enhancing optical modulator reliability.
Voltage-controlled electrodes orient liquid crystal molecules vertically, eliminating dust from mechanical rubbing.
An optical element with movable particles switches between privacy and viewing modes, eliminating light loss from mechanical louvers.
An electrically controlled polarization rotator uses a liquid crystal layer to rotate light polarization via adjustable switching fields.
Integrating supports within an optical lens maintains consistent spacing between the lens and diffuser plate.
A curved liquid crystal display device uses a mold frame with coupling sections to bond the panel and force downward curvature matching the backplane.
Overhanging spacers and sealing agent structures counterbalance substrate stresses to prevent optical axis deflection and dark-state light leakage.
Segmented column spacers and intermediary bump spacers prevent light leakage while maintaining cell gap under external pressure.
Notched side electrodes maintain opposite alignment directions at pixel boundaries, eliminating dark lines and improving light transmittance.
Randomizing figure element apexes on the reflective film suppresses rainbow color interference while maintaining high contrast ratio.
A vehicle display device combines an electrochromic panel with a polymer dispersed liquid crystal layer to enable adaptive optical states.
A non-rectangular display panel uses specific color filter area ratios to ensure uniform light emission across the entire viewing region.
Vacuum absorption through a backside plate positions the electrophoretic display structure, preventing air bubbles during flexible substrate stacking.
Sub-photo spacers align liquid crystal molecules evenly, eliminating complex protrusions that increase manufacturing difficulty and production costs.
A liquid crystal display divides pixels into sub-pixels with variable resistors to control voltage distribution.
A display device forms line number identification patterns on gate and data lines to enable rapid visual inspection during fabrication.
Adding a chiral agent creates helical twisting force to rotate liquid crystal molecules, reducing dark area around pixels and maximizing transmittance.
A peripheral shielding conductor disperses static electricity to prevent thin film transistor damage during manufacturing.
Widening gate wiring segments near dummy pixels disperses thermal stress to prevent cracks and maintain display yield.
An insulating filler fills through-holes in a display device to prevent short circuits between closely spaced pixel and common electrodes.
A liquid crystal display device uses overlapping slit electrodes and plate-shaped electrodes to drive molecules.
A liquid crystal display device uses V-shaped pixel electrodes to generate lateral electric fields that align molecules into four distinct domains.
Adhesive groove part with S-shaped curved lines increases sealant contact area across protective layers.
A two-layer aluminum oxide gate stack prevents oxygen extraction from the oxide semiconductor by the metal gate electrode, suppressing leak current.
Precise oxide ratios in Tb2O3 glass boost transmittance while mitigating thermal lensing from high-power laser irradiation.
Liquid crystal displays employ common electrode cutouts and insulating sealant barriers to prevent short circuits and sealant diffusion into driving circuits.
Bimodal white particles use size-dependent mobility to agitate the dispersion medium and maintain display whiteness.
Graded opacifying layers eliminate visible discontinuities in color and reflectance across multi-zone mirrors, ensuring uniform optical performance.
A backlight unit uses a reflective lens and phosphor-coated tape to diffuse light uniformly.
Optimizing protective layer thickness and film retardation compensates for birefringence to improve viewing angle characteristics.
Alternating black border pattern thicknesses and a gate metal layer prevent light leakage while eliminating dummy color filters that cause over-etching.
Dual blue filters segment emission into short and long wavebands, reducing harmful exposure while maintaining brightness.
Organic insulating layers separate copper wiring from aluminum reflective electrodes in liquid crystal displays.
Regioselectively substituted cellulose ester films achieve improved wavelength dispersion, reducing color shifts in liquid crystal displays.
Aligned silver and gold nanorods in a polarizing element resolve wavelength-dependent transmittance trade-offs, enhancing display brightness and contrast.
An electromagnetic frequency converter uses Rydberg atomic transitions to bridge microwave and optical signals without resonant cavities.
A birefringence layer with alternating refractive regions manipulates light paths to enhance display resolution.
Segmented liquid crystal layers with distinct tilt angles maintain luminance and color quality across a broader viewing range.