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SLM, narrow linewidth, coherence

MSL-T-375375 nm UV single-frequency laser

375 nm

MSL-T-375 is a 375 nm Single-Frequency laser. Used for quantum computing, cell sorting, laser cooling of potassium atoms, spectrum analysis. Linewidth < 0.000005 nm Coherent length >30 m MSL-T- 375/ 1~80mW Linewidth < 0.000005 nm Coherent length >30 m. Key specifications: output / average power 1~80 mW. View specifications, datasheet and enquiry options from Precisometer.

Specifications

MSL-T-375

2 specification rows

Wavelength375 nm
Output / average power1~80 mW
Beam / notesLinewidth < 0.000005 nm Coherent length >30 m MSL-T-375/ 1~80 mW Linewidth < 0.000005 nm Coherent length >30 m

Series-level technical context

Engineering context for a thin Single-Frequency Lasers record

This model has no standalone PDF and only a small number of model-specific rows. The values below are traceable context from 12 wavelength-near single-frequency lasers records; they define the parameters to qualify, but are not substituted for an order-specific datasheet.

Typical operating fields in the series

  • Output / average power: 1~80 mW
  • Output / average power: 1~15 mW
  • Output / average power: 1~50 mW
  • Operating mode: CW
  • Spectral linewidth: <10 MHz

Beam-quality tolerance context

Nearby series records state M²: <1.2, M²: <1.5, Beam divergence, full angle (mrad): ~2.5×1.0, and Beam divergence, full angle (mrad): <1.2. These are series context, not guaranteed values for MSL-T-375; confirm them on the order-specific datasheet.

Optical integration schematic

  1. Step 1Laser head and temperature-stabilized base
  2. Step 2Safety shutter and optional optical isolator
  3. Step 3Beam steering, expansion or fiber-launch optics
  4. Step 4Experiment input with wavelength-matched coatings

Application context

Why this design is used

Applications named on a datasheet for this product line, interpreted against this model’s listed wavelength and beam data.

Quantum computing

MSL-T-375: 375 nm emission determines compatible optics, coatings and detectors for Quantum computing. Beam quality, divergence and pointing stability should be checked against the experiment geometry.

Cell sorting

MSL-T-375: 375 nm emission determines compatible optics, coatings and detectors for Cell sorting. Beam quality, divergence and pointing stability should be checked against the experiment geometry.

Laser cooling of potassium atoms

MSL-T-375: 375 nm emission determines compatible optics, coatings and detectors for Laser cooling of potassium atoms. Beam quality, divergence and pointing stability should be checked against the experiment geometry.

Spectrum analysis

MSL-T-375: 375 nm emission sets the excitation and detector-band choice for Spectrum analysis; linewidth and wavelength stability determine how cleanly weak spectral features can be separated from the laser line.

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 MSL-T-375 with the closest available models in the Single-Frequency Lasers family. Confirm option-dependent values on the final configuration before ordering.

Selection parameterMSL-T-375 (current)3 75MDL-E-375
Wavelength375 nm375 nm375 nm
Optical power / pulse energy1~80 mW1~80 mW1~15 mW
Operating mode / pulse widthConfirm for this modelConfirm for this modelCW
Beam qualityConfirm for this modelConfirm for this modelMultimode