Temperature-controlled paired CVBGs stretch and compress ultrashort pulses while matching amplifier dispersion with lower complexity and stress.
Circular or elliptical polarization cuts Kerr-driven nonlinear phase in optical amplifiers, improving beam quality and peak power.
Serially coupled fiber lasers switch beam shape, diameter, and power at high frequency without the cost and complexity of separate combiners.
A mirror-guided multi-pass crystal boosts optical parametric gain and conversion efficiency while preserving broad spectral bandwidth.
Multiple end pump spots and a telecentric telescope raise laser amplifier power while avoiding bulky, complex CPA optics.
Aperture mirrors and a nonlinear crystal enable tunable continuous-wave UV generation while limiting UV-induced optical component degradation.
Dedicated dump ports diffuse and absorb reverse-propagating light in a fiber combiner to protect optical components in high power lasers.
A seed beam locks laser array emitters to a common phase, enabling scalable coherent output and beam steering at very high power.
A low-nonlinearity input layer and coupling structure raise LiDAR chip optical power while limiting silicon waveguide loss.
Adaptive beam control with coherent fiber arrays and interference sensing preserves beam quality as laser power scales for remote targets.
By controlling the CEO difference frequency between two optical comb lasers, this case enables accurate detection within narrow detector bands.
A prefabricated chassis fixes MO, PA, and beam-transfer optics in place to simplify SWIR laser alignment, cut assembly time, and lower cost.
Ultrashort high-energy pulses at controlled repetition rates limit plasma buildup, enabling precise machining with a simpler laser architecture.
Surface grooves or refractive-index layers strip stray light from a fiber combiner glass tube, reducing overheating and extending combiner life.
A movable converging unit with a reflective spatial light modulator keeps laser machining compact while preserving image transfer accuracy across wavelengths.
Integrated laser units, reflection optics, and coaxial coupling combine four parallel beams into one fiber, raising power with less alignment complexity.
Reflection and refraction align four parallel solid-laser beams into one fiber, raising output power without motorized switching complexity.
Multiple fiber lasers feed a tapered bundle and multicore delivery fiber to extend beam delivery while limiting nonlinear effects.
A two-stage CO2 laser uses longer oscillator pulses before amplification to avoid gain loss from rotational relaxation and still deliver short output pulses.
A movable converging unit and double telecentric imaging keep laser processing compact while supporting multiple wavelengths and accurate pupil transfer.
A single pumping source drives both the oscillator and amplifier to keep LiDAR lasers compact while preserving pulse energy, beam quality, and repetition rate.
Hybrid tandem and direct diode pumping creates a fiber temperature gradient that passively suppresses SBS for narrow-linewidth kW output.