Scientific research
710 ~ 810: 710~810 nm emission determines compatible optics, coatings and detectors for Scientific research. Beam quality, divergence and pointing stability should be checked against the experiment geometry.
Pulse energy, repetition rate, pulse width
710 ~ 810 is a 710~810 nm Pulsed laser. Used for scientific research, medical treatment, remote sensing, spectroscopy. Rep. rate (Hz): 1 -20; Cooled method: Water cooled. Key specifications: pulse energy 1-20 mJ, repetition rate 1-20 Hz, pulse width ≤15 ns. View specifications, datasheet and enquiry options from Precisometer.
Specifications
5 specification rows
| Wavelength | 710~810 nm |
|---|---|
| Pulse energy | 1-20 mJ |
| Repetition rate | 1-20 Hz |
| Beam / notes | Rep. rate (Hz): 1-20; Cooled method: Water cooled |
| Pulse width | ≤15 ns |
| Cooling | Water cooled |
Application context
Typical uses for this laser type, with the selection logic tied to the model record.
710 ~ 810: 710~810 nm emission determines compatible optics, coatings and detectors for Scientific research. Beam quality, divergence and pointing stability should be checked against the experiment geometry.
710 ~ 810: 710~810 nm emission determines compatible optics, coatings and detectors for Medical treatment. Beam quality, divergence and pointing stability should be checked against the experiment geometry.
710 ~ 810: 710~810 nm emission determines compatible optics, coatings and detectors for Remote sensing. Beam quality, divergence and pointing stability should be checked against the experiment geometry.
710 ~ 810: 710~810 nm emission sets the excitation and detector-band choice for Spectroscopy; linewidth and wavelength stability determine how cleanly weak spectral features can be separated from the laser line.
System integration
Use these checks to connect 710 ~ 810 to the surrounding optical, mechanical and control system. Every value shown is taken from this model's own specification record.
Technical FAQ
Cooling: Water cooled. Provide the stated cooling method and keep the laser-head base thermally coupled; temperature drift moves wavelength, output power and beam pointing.
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 710 ~ 810 with the closest available models in the Pulsed Lasers family. Confirm option-dependent values on the final configuration before ordering.
| Selection parameter | 710 ~ 810 (current) | 420 ~ 1200 | 2 13 |
|---|---|---|---|
| Wavelength | 710~810 nm | 420~1200 nm | 213 nm |
| Optical power / pulse energy | 1-20 mJ | 1-20 mJ | 1-100 uJ |
| Operating mode / pulse width | 1-20 Hz | 10 Hz | 100 Hz-10 kHz |
| Beam quality | Confirm for this model | Confirm for this model | Confirm for this model |
Compare the 710 ~ 810 with nearby pulsed 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
Photoacoustic imagingConnect optical absorption to wavelength, pulse fluence, stress confinement, acoustic bandwidth, repetition rate, and synchronization at the sample.
Open guide
Ultrafast spectroscopyDesign the pump, probe, delay line, monochromator, visible or SWIR camera, synchronization, and transient-signal budget as one experiment.
Open guide