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Power stability, linewidth, beam quality

MGL-F-515515 nm green CW laser

515 nm

MGL-F-515 is a 515 nm CW laser. Used for applications such as fluorescence sensors, raman spectroscopy, laser printing, holography. High Stability Green Laser. Key specifications: output / average power 1~100 mW, operating mode CW, polarization ratio >100:1, Horizontal (Vertical optional). View specifications, datasheet and enquiry options from Precisometer.

Specifications

MGL-F-515

12 specification rows

Output / average power1~100 mW
Beam / notesHigh Stability Green Laser
Operating modeCW
Polarization ratio>100:1, Horizontal (Vertical optional)
Warm-up time (minutes)<5
Operating temperature (°C)10-35
Modulation optionalDC-1kHz, 1kHz-10kHz, 10kHz-30kHz optional; TTL and Analog optional
Power supply (100-240VAC)PSU-H-FDA/PSU-H-LED/PSU-SR
Expected lifetime (hours)>10000
Wavelength (nm)515±2
Pointing stability (μrad) (over 2 hours after warm-up and ±3°C)<50
Beam height from base plate (mm)45

Application context

Why this design is used

Applications named on this model’s datasheet, expanded with the model’s optical specifications.

Applications such as fluorescence sensors

MGL-F-515: 515 nm emission can be matched to the absorption or excitation band used in Applications such as fluorescence sensors. The stated stability or noise figure (<50) helps keep measured intensity changes attributable to the sample rather than source drift.

Raman spectroscopy

MGL-F-515: 515 nm emission sets the excitation and detector-band choice for Raman spectroscopy; linewidth and wavelength stability determine how cleanly weak spectral features can be separated from the laser line.

Laser printing

MGL-F-515: 515 nm emission determines compatible optics, coatings and detectors for Laser printing. Beam quality, divergence and pointing stability should be checked against the experiment geometry.

Holography

MGL-F-515: 515 nm emission determines compatible optics, coatings and detectors for Holography. Beam quality, divergence and pointing stability should be checked against the experiment geometry.

System integration

Integration and compatibility

Use these checks to connect MGL-F-515 to the surrounding optical, mechanical and control system. Every value shown is taken from this model's own specification record.

Thermal management
Operating temperature (°C): 10-35
Provide the stated cooling method and keep the laser-head base thermally coupled; temperature drift moves wavelength, output power and beam pointing.
Beam parameters at the output
Polarization ratio: >100:1, Horizontal (Vertical optional)
Size the downstream optics from the stated beam diameter and divergence rather than from the aperture of the housing, and confirm the polarisation state before specifying isolators or polarising optics.

Technical FAQ

Integration questions for MGL-F-515

What cooling does the MGL-F-515 require?

Operating temperature (°C): 10-35. Provide the stated cooling method and keep the laser-head base thermally coupled; temperature drift moves wavelength, output power and beam pointing.

What beam does the MGL-F-515 deliver?

Polarization ratio: >100:1, Horizontal (Vertical optional). Size the downstream optics from the stated beam diameter and divergence rather than from the aperture of the housing, and confirm the polarisation state before specifying isolators or polarising optics.

Need this configured?

Share wavelength, operating mode, output power or pulse energy, linewidth or pulse width, delivery, control, and safety requirements and we will qualify the matching configuration and lead time.

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Model selection

Nearby series comparison

Compare MGL-F-515 with the closest available models in the CW Lasers family. Confirm option-dependent values on the final configuration before ordering.

Selection parameterMGL-F-515 (current)MGL-515(FC)FC-515
Wavelength515 nm515 nm515 nm
Optical power / pulse energy1~100 mW1~400 mW1~90 mW
Operating mode / pulse widthCWCWConfirm for this model
Beam qualityConfirm for this modelConfirm for this modelConfirm for this model