Laser spectroscopy

For a long time laser spectroscopy has been a source of inspiration for EKSPLA laser engineers. Our tunable-wavelength, picosecond and nanosecond lasers probe matter in techniques such as SFG, pump-probe and terahertz spectroscopy, photolysis, LIBS and LIDAR.

LIDAR

LIDAR stands for light detection and ranging. A pulsed laser fires into the atmosphere and the light scatters all along the beam path off aerosols, dust and air molecules, while a telescope collects the fraction that comes back. Because light travels at a fixed speed, the delay of each return fixes the distance to the scatterer, so one pulse yields a profile along the whole beam rather than a single reading.

LIDAR works in the ultraviolet, visible and near-infrared, and returns signal from targets that are awkward to reach any other way: clouds and rain, aerosols and pollutants, rock and other non-metallic surfaces. That makes it a standard instrument for atmospheric profiling, remote sensing and topographic mapping.

Two laser properties set what a LIDAR can measure. Pulse energy sets the range: the NL230 delivers up to 190 mJ at 100 Hz, the NL300 up to 1100 mJ with harmonics modules down to 213 nm. Wavelength sets the species: tuning an OPO onto and off a molecular absorption line converts a range profile into a concentration profile, and the tunable-wavelength lasers cover 192 nm to 4400 nm for that.

LIDAR operating principle.

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