A seven-lens wide-angle optical system uses aspherical surfaces to correct high-order aberrations.
A thin film structure uses a blocking layer and matching layers to protect adhesives from UV degradation.
A four-element imaging lens uses asymmetric refractive power distributions to bend light through specific curvature ratios.
Optimized curvature radii balance high resolution with moldability, resolving the trade-off between precision and manufacturability in compact optical systems.
A seven-element camera optical lens corrects chromatic and spherical aberrations using alternating positive and negative refractive powers.
A zoom lens uses aspherical surfaces in a negative second unit to correct optical aberrations.
A four-element infrared lens assembly corrects optical aberrations to enable precise dynamic eye gaze tracking.
An eight-element optical imaging lens uses aspherical surfaces to deliver high-resolution images in a compact form factor.
Aspheric surfaces with inflection points on six lens elements correct aberrations to maintain image quality despite reduced axial distances.
A seven-element camera optical lens uses glass and plastic materials to correct chromatic aberrations while maintaining a compact structure.
Ink aggregates on a hydrophobic dielectric layer under an electric field to achieve full-color display without adding complex color filters.
A seven-element camera optical lens uses free-form surfaces to enhance imaging quality and achieve ultra-thin wide-angle designs.
A zoom lens system moves lens units along an optical axis to vary magnification and achieve a compact form factor.
Aspheric lens elements in a six-element assembly correct aberrations while reducing back focal length for compact portable devices.
Convex minute concave portions on the mold plate prevent structural peeling during molding, extending tool lifespan and reducing manufacturing costs.
Segmented first lens units with optimized focal lengths reduce chromatic aberration and distortion across a wide angle of view.
A seven-lens optical imaging system expands the semi-field of view beyond 70 degrees using mixed glass and plastic elements.
A polyester optical film uses crosslinked polymer particles to form uniform elliptical voids that enhance reflectance.
A non-coaxial optical component transmits display light through incident and emergent surfaces to reduce module thickness.
A seven-lens camera optical system uses specific refractive power sequences to correct aberrations.
An asymmetric D-cut lens configuration minimizes radial size while maintaining optical performance reliability in portable terminals.
A nine-lens imaging system uses a negative ninth lens with an aspherical surface to correct peripheral aberrations.
Interchangeable face gaskets on a contoured spacer frame create clearance for glasses, resolving interference between lenses and facial features.
A curable composition forms a cured product via cationic polymerization using an onium borate salt initiator.
Dynamic spacing between positive and negative lens groups corrects aberration fluctuations, enabling high zoom ratios without increasing overall device size.
Dichroic mirrors combine visible and infrared light into one beam, overcoming narrow spectrum limits to emit an ultra-wide continuum from 400 nm to 5000 nm.
A six-lens imaging system uses aspherical surfaces to correct optical aberrations.
A compact wide angle lens uses two lens groups to provide focusing power and correct aberrations.