Quantum computing
MSL-T-780: 780 nm emission determines compatible optics, coatings and detectors for Quantum computing. The catalogued beam parameter (<0.5) helps predict how the source will focus and propagate through the instrument.
SLM, narrow linewidth, coherence
MSL-T-780 is a 780 nm Single-Frequency laser. Used for quantum computing, cell sorting, laser cooling of potassium atoms, spectrum analysis. M²: <0.5%. Key specifications: output / average power 1~300 mW, spectral linewidth <10 MHz, optical noise <0.5%. View specifications, datasheet and enquiry options from Precisometer.
Specifications
5 specification rows
| Wavelength | 780 nm |
|---|---|
| Output / average power | 1~300 mW |
| Spectral linewidth | <10 MHz |
| Optical noise | <0.5% |
| M² | <0.5 |
| Beam / notes | % |
Application context
Applications named on a datasheet for this product line, interpreted against this model’s listed wavelength and beam data.
MSL-T-780: 780 nm emission determines compatible optics, coatings and detectors for Quantum computing. The catalogued beam parameter (<0.5) helps predict how the source will focus and propagate through the instrument.
MSL-T-780: 780 nm emission determines compatible optics, coatings and detectors for Cell sorting. The catalogued beam parameter (<0.5) helps predict how the source will focus and propagate through the instrument.
MSL-T-780: 780 nm emission determines compatible optics, coatings and detectors for Laser cooling of potassium atoms. The catalogued beam parameter (<0.5) helps predict how the source will focus and propagate through the instrument.
MSL-T-780: 780 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. The listed beam characteristic (<0.5) also controls focusing and collection geometry.
System integration
Use these checks to connect MSL-T-780 to the surrounding optical, mechanical and control system. Every value shown is taken from this model's own specification record.
Technical FAQ
M²: <0.5. 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.
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.
Model selection
Compare MSL-T-780 with the closest available models in the Single-Frequency Lasers family. Confirm option-dependent values on the final configuration before ordering.
| Selection parameter | MSL-T-780 (current) | 780 | MSL-III-780L |
|---|---|---|---|
| Wavelength | 780 nm | 780 nm | 780 nm |
| Optical power / pulse energy | 1~300 mW | 1~80 mW | 1~80 mW |
| Operating mode / pulse width | Confirm for this model | Confirm for this model | CW |
| Beam quality | <0.5 | <1.5 | ~2.0 |
Compare the MSL-T-780 with nearby single-frequency lasers across the wavelength range.
Choosing a laser
Which specifications decide the experiment, and which ones cost money without changing the result.
PhotonicsLinewidth, spectral width, RIN, M², and coherence length answer five different questions. Translate each into the units your experiment is designed in — and learn which ones not to pay for.
Open guide
PhotonicsSingle-mode fiber does not preserve polarization. Pin the state, erase it with a scrambler, or maintain it in PM fiber — which one your measurement needs, and the response time and extinction ratio that decide it.
Open guide