Polarization-selective folded optics use transmissive reflective surfaces to cut module length while limiting chromatic aberration, crosstalk, and ghost light.
A reflection polarizing plate replaces the half mirror to align camera sightlines while reducing display dimming and preserving video quality.
Switchable liquid crystal waveplate lenses vary optical power across AR depth planes, easing vergence-accommodation mismatch with a lighter optical stack.
Stretching and annealing a crystallizable polymer film keeps reflective polarizer optical axis deviation low for roll-to-roll AR/VR optics.
A rear light-blocking film directly bonded under the display panel blocks back-surface light intrusion and preserves front image clarity.
Moisture-proof packaging keeps heat-bent polarizing sheets dry enough for direct injection molding, avoiding pre-drying and film removal.
A phase compensation structure on a non-planar lens restores circular polarization in folded optics, reducing stray light and preserving thin display design.
A bonded light-transmitting plate dissipates polarizer heat without organic adhesive, preserving extinction ratio under high-power laser use.
An inclined chip incident surface enables beam shift in a compact package while integrated polarizer and Faraday rotator preserve optical performance.
Dichroic dyes in spacer layers absorb scattered light to suppress prism-to-prism streaks while optical stacks separate polarization in PBS.
A single O-plate retardation layer combines half-wave and quarter-wave functions to reduce front and lateral reflectivity differences in OLED displays.
A reflective polarizer limits pass-state reflectance to 1% while partial reflection and coatings suppress unwanted light for higher HMD contrast.
Light-blocking components shield columnar spacers in an active retarder, reducing crosstalk while balancing left- and right-eye 3D quality.
Shared reflectors route imaging and illumination light through a folded path, reducing camera-module size while preserving high-resolution imaging.
A retardation film with controlled phase difference and slow-axis alignment compensates stress-induced optical defects in injection-molded eyewear.
A first optical cavity nests prisms, a phase-delay film, and a wedge lens to reduce thickness while preserving a large field angle.
Positive-C and internal retardation layers improve IPS lateral contrast, suppress light leakage, and maintain white-mode uniformity.
See how storage-modulus control helps flexible OLED optical stacks retain viscoelasticity and recoverability across temperatures.