Pattern electrodes apply opposing voltages to suspend light conversion particles within the receiving part of an optical path control member.
Switchable backing members resolve process white limitations by reflecting all incident light for true white states.
Multi-domain pixel arrangements reduce chromatic aberration at inclined viewing angles by assigning distinct inclining directions to adjacent pixel regions.
A display panel design uses a conductive film and chamfered edge to bond flexible circuits, minimizing frame width.
A projection system recycles light through a beam splitter and reflective lens coating to enhance display luminosity.
Articulated turntable eliminates factory floor waiting areas by directly transferring glass substrates between export and import apparatuses.
Stacked conductive layers lower common electrode line resistance to minimize RC signal delay and greenish tint in display devices.
Generating high-order harmonics in semiconductor media to probe internal electric fields with attosecond temporal resolution.
Segmented second electrodes maintain uniform liquid crystal orientation under strong electric fields, preventing display unevenness.
Curved gradient-index liquid crystal lenses reduce light scattering and resolve vergence-accommodation conflicts in head-mounted displays.
Deflection micro-lenses prevent image ghosting and color mixing by separating virtual images, reducing device weight.
Monolithic polarizing beam splitter array eliminates hand assembly, resolving yield and cost bottlenecks in LCOS projector production.
Transparent conductive adhesive grounds polarizer extension to array substrate ground point forming discharge loop.
Varying trunk heights in IPS pixel electrodes disperse spacer-induced pressure to prevent structural cracks and dark line defects.
Asymmetric optical microstructures deflect light to maintain brightness uniformity while restricting viewing angles to prevent confidential information leakage.
The COA substrate routes the DBS common electrode line through a non-opening region to bypass the pixel through-hole.
A liquid crystal display device incorporates a light shielding film on panel side surfaces to block backlight leakage.
Extracting the protective function into a separate metal COF cover resolves the contradiction between bezel width and connection reliability.
A display module uses sticky, stretchable sealing structures to isolate the interior from external contaminants.
A liquid crystal display device uses a horizontally extending light blocking member to cover transistors while spacing data lines from overlapping color filters.
A backlight retaining resin frame with protruding ribs receives fixing devices and glass plates to secure the liquid crystal display panel.
Anisotropic conductive film bonds driving integrated circuit chips to display panels, preventing separation from external impact.
A display device shares wiring for drive voltage and touch signals to reduce frame area.
Dual storage capacitors formed by a metal layer compensate for TFT leakage current, reducing flicker without shrinking the aperture ratio.
Asymmetric pixel electrode tilting shields alignment disturbances in twisted nematic displays, preventing light leakage while maintaining high aperture ratio.
Segmented capacitive portions reduce parasitic capacitance and electric field leakage between adjacent pixel electrodes.
Overlapping color films form a post spacer that controls substrate spacing, eliminating dedicated spacer processes and reducing manufacturing complexity.
Curved metal and sensor electrodes reduce parasitic capacitance while maintaining high aperture ratios to improve display contrast.
Flat display device polarizing plates with wide view films at specific absorption axis angles eliminate additional polymer films, reducing cost and thickness.
Overlapping corner protrusions on a reflective sheet prevent gap formation and light leakage at folded edges.
An electrochromic active barrier uses oxidation and reduction reactions to form light transmission regions without polarizers.
Tilt-down insulating layer free ends prevent photoresist residue accumulation during LCD array substrate fabrication.
Unequal included angles between branch and trunk electrodes compensate for narrow viewing angles, enhancing brightness evenness in 8K displays.
Asymmetric lenses and non-parallel sub-pixels reduce interference patterns caused by panel misalignment in stacked displays.
Segmenting the filtering function into multiple narrow-band colorant layers resolves the contradiction between wide color gamut and high luminance intensity.
Electrochromic device architecture uses electrode openings to enable direct material deposition, eliminating expensive transparent conductive oxides.
A light shielding layer overlaps outermost conductive patterns of a pixel electrode to balance optical transmittance.
A first black shading layer on an array substrate overlaps shielding metal lines to block light leakage gaps between data lines.
Integrating a resin light blocking layer with color filters prevents metal line reflections to enhance visual recognizability.
A liquid crystal display panel uses main and secondary spacers to maintain precise cell gap dimensions between the TFT and color filter substrates.
Segmented curing pads and assist lines deliver unique sub common voltages to individual liquid crystal display panels.
A lithium niobate optical element uses a contact metal with high oxidation enthalpy to suppress drift.
A connecting dielectric layer concentrates the electric field within an electro-optic waveguide to enhance modulation efficiency.
A liquid crystal compensation film corrects phase retardation variations in polarizers bonded to curved surfaces, ensuring consistent optical properties.
A transparent display panel switches between opaque image output and light passage to enable camera functionality through the screen.
A flat display device uses an optical path control member with pyramid-shaped receiving portions to direct light emission toward the front.
A reflective display apparatus incorporates a compensation layer to correct liquid crystal retardation.
Aligning optical axes with residual retardation ellipsoids compensates interface defects, improving contrast ratio and viewing angle.
Merged frame glue patterns eliminate vacant cutting areas between adjacent panels, improving motherboard utilization without compromising sealing integrity.
A window panel with a light-blocking printed layer defines the display area boundary using its inner surface.