A high level portion in the insulating layer prevents material accumulation on black layers within contact holes.
Transparent conductive storage capacitor electrodes increase electrostatic capacity and aperture ratio while maintaining high light transmittance.
Microlenses redirect light onto pixel electrodes, overcoming bus line blockage to boost aperture ratio.
A nonlinear converter transforms blue light into Far-UV radiation using alternating dielectric and metal layers.
An array substrate design merges data lines using matrix sub-pixel arrangements to simplify fabrication and lower energy consumption.
A display device places a light shielding layer on a translucent resin substrate to prevent color mixture and contamination.
Dynamic electrode control moves lens equivalents based on eye tracking data, reducing image crosstalk during head movement.
Support parts elevate a dielectric relay substrate to create an air gap, suppressing radiation loss without requiring substrate grooving.
Array substrate transparent electrode connects gate and data lines through specific through holes.
A dual liquid crystal display uses a spacer layer between cells to suppress capacitive coupling effects and reduce panel deformation, improving touch accuracy.
Vertical hole alignment in touch insulation layers minimizes area for drain electrode contacts, enabling ultra-high definition resolution above 300 ppi.
Photo-reactive single molecules form polymer projections to stabilize liquid crystal alignment without polyimide layers.
Corner prism sets redirect image light into frame areas via inclined transparent elements, eliminating dark corners and maintaining thin profiles.
Apparatus controls non-light-emitting variable transmission devices using unique operating parameters derived from voltage and current measurements.
Segmented substrate plates with tuned quantum dots achieve 100 GHz switching speeds, overcoming the 150 kHz limits of conventional modulators.
A transflective LCD unit employs a reverse-tilt control member to suppress leakage light at the boundary between reflective and transmissive areas.
An optical element with anti-parallel slow axes reduces stray light and improves contrast ratios.
Mask layer on transparent substrate aligns with silicon to eliminate mounting errors and reflective light in LCOS displays.
Vertical wiring via stacked transparent conductive layers increases aperture ratio and luminance without expanding planar layout complexity.
Metal wires on substrates block light in peripheral regions of a stacked liquid crystal device, preventing orientation disorder and light leakage.
A polarizer-alignment dual function film integrates optically anisotropic material with substrate strips to unify polarization and alignment.
A light guide ring directs illumination to display areas adjacent to camera apertures.
Third electrode with redox substance corrects charge imbalance, suppressing decoloring failures and maintaining absorption spectrum.
Segmented electrode layers with differentiated sheet resistance resolve contradictions between reset reliability and viewing angle control precision.
A gradient-index liquid crystal lens adjusts optical power via voltage gradients to resolve vergence-accommodation conflict in head-mounted displays.
Asymmetric pre-tilt alignment layers compensate for stress-induced dislocation in curved liquid crystal display panels, reducing dark fringes.
Polymer barrier stabilizes liquid crystal alignment on flexible plastic substrates.
Distinct resist materials reduce light transmittance differences between regions, improving display quality.
Thin film substrates minimize optical losses and ghosting in beam splitters by reducing internal reflections.
Forming the light shielding layer simultaneously with the spacer reduces fabrication steps, prevents light leakage, and improves aperture ratio.
A dual drive optical modulator uses a two-layer signal electrode structure to improve velocity matching between microwave and optical signals.
A single electrode structure modulates multiple optical waveguides through uniform electric field distribution across a thinned substrate.
Consolidating alignment references into one panel mark resolves space constraints and appearance issues while maintaining precise positioning accuracy.
Adding compensation capacitance to peripheral scanning lines equalizes signal propagation, eliminating luminance unevenness in heteromorphic displays.
A quarter-wave birefringent layer converts reflected light polarization to orthogonal states blocked by the top polarizer.
An electro-optical intensity modulator relocates electrodes from the Y-junction to separate adjustment waveguides for active extinction ratio control.
Asymmetric pixel electrode spacing suppresses color mixture during oblique viewing while maintaining luminance.
Segmented second data lines in a liquid crystal light control structure reduce moiré patterns and color mura by controlling aperture ratios.
Segmented cover bottoms isolate fastening stress to prevent light leakage and maintain flatness.
Connecting screws with threaded holes fix the display panel and backlight module, replacing adhesive tape that degrades over time.
Resin layers and conductive members radiate heat from the driving IC to suppress display unevenness.
An adjustment layer and electrode stack dynamically alter refractive index via electric signals to control light emission angles.
Domain regulators align liquid crystal molecules obliquely to improve viewing angles while reducing darkened regions that lower the aperture ratio.
Segmented silicon oxide and indium oxide buffer layers suppress DC drift in thin-film lithium niobate modulators.
Segmented comb electrodes create non-aligned transmission zones to resolve the trade-off between response speed and light transmission loss.
An intermediary barrier prevents silver particle migration from conductive adhesive, maintaining electrical stability in high humidity LCOS environments.
Resonator mirrors coupled with a SrB4O7 crystal boost conversion efficiency while avoiding manufacturing difficulties from thin nonlinear optical crystals.
Shielding electrodes intercept electric field lines to eliminate erroneous vertical lines caused by coupling capacitance in reduced data line LCD panels.