
Complete confocal fluorescence microscope that empowers researchers to advance quantitative functional imaging from individual molecules to cells and tissues.

Modular, customizable, time-resolved confocal microscope with single-molecule sensitivity for life and materials science.

Compact FLIM and FCS upgrade kit that adds advanced functional imaging and correlation analysis to existing laser scanning microscopes.

Designed for flexible, sensitive, and precise steady-state and time-resolved spectroscopy across the UV to NIR range and time scales from picoseconds to milliseconds.

Modular lifetime spectrometer designed for flexible fluorescence and photoluminescence measurements in both materials and life science research.

Add spectral and time-resolved photoluminescence to your setup through flexible microscope–spectrometer coupling options.

Get the most out of superconducting nanowire detectors in large-scale quantum communication and computing experiments requiring precise multichannel timing.

Boost your time-resolved experiments with a flexible, high-precision time tagging and TCSPC unit for materials science and quantum sensing.

Scale your photonic quantum computing and detector characterization setups while maintaining performance, flexibility, and high data throughput.

Compact 3-color picosecond laser delivering flexible ns to ms excitation with cost-effective multicolor performance and straightforward operation.

Smart picosecond laser diode heads covering UV-A to NIR, providing the right combination of power, pulse width, and diode type for any time-resolved technique.

VisUV provides clean short pulses and stable timing across key UV and visible wavelengths, including deep UV lines as well as 488 nm and 532 nm.

Enhance your single-photon counting experiments with wide dynamic range and excellent timing precision in the UV and visible even at the highest count rates.

Capture even the weakest signals over large areas with maximum dynamic range and enhanced low-light sensitivity in a compact detector design.

Unlock spatially resolved single-photon detection with a 23-pixel SPAD array, combining low dark counts and precise time tagging for advanced experiments.

Advanced FLIM analysis software for fast, accurate interpretation of lifetime imaging data.

Intuitive, free software solution for real-time, high-precision photon data acquisition, visualization, and initial data analysis.

Advanced software for time-resolved fluorescence acquisition and analysis.

An imaging technique that uses fluorescence lifetimes to generate image contrast.

Investigating how proteins dynamically explore multiple conformational states that control biological function.

Investigating how biomolecules separate into dynamic liquid phases to organize cellular space and regulate biological function.

A time-resolved technique that measures photoluminescence lifetimes to reveal excited-state dynamics in materials.

Studying exciton dynamics, charge carrier processes, and structural properties through optical and time-resolved characterization methods.

Investigating charge-carrier lifetimes and recombination dynamics to enable precise optical characterization of material quality and device performance.

A quantum optical signature revealed by time-resolved photon correlation analysis to identify single-photon emission in materials and nanostructures.

The transmission of information using individual photons, using quantum effects to ensure absolute security.

Quantifying photons per detection event enables direct access to photon-number statistics, providing insight into quantum and statistical properties of light.

An optical technique that analyzes light emission under electrical excitation to reveal electronic properties of electroluminescent materials.

Monitoring environmental signals and trace compounds to understand dynamic changes in natural and engineered environments.

A photon timing technique that measures single-photon arrival times to resolve ultrafast dynamics in fluorescence, materials research, and quantum optics.
| Available wavelength | 266 to 590 nm |
| Spectral width | << 1 nm |
| Polarization Extinction Ratio (PER) | > 1:300 (> 25 dB) |
| Power stability (12 hours) (ΔT (ambient) < 0.5 K) | < 3 % RMS |
| Other optical specs (power, pulse, beam shape) | See wavelengths table |
| Range | User selectable: 80, 40, 20, 10, 5 or 2.5 MHz (80 MHz base frequency) 1 000, 500, 250, 125, 62.5 or 31.25 kHz (1 MHz base frequency) |
| via NIM Input | via TTL Input | |
| Range | < 1 Hz to 80 MHz | < 1 Hz to 80 MHz |
| Amplitude | - 5 to + 5 V (maximum limits) | |
| Trigger level | fixed trigger level at - 400 mV | adjustable between - 1 and + 1 V |
| Connector | NIM-CAMAC | BNC |
| Amplitude | < - 800 mV into 50 Ohms (NIM) |
| Connector | SMA |
| Timing | Synchronous to the pulse repetition rate |
| Trigger in (NIM) to sync out | Typ. 9 ± 1 ns |
| Trigger in (NIM) to optical out | Typ. 80 ns |
| Sync out to optical out | Typ. 70 ns |
| For multiple optical outputs: Max time delay between different output pulses | < 1 ns |
| Connector | USB Type-C 3.0 |
| USB version | 2.0 |
| Compatibility | PicoQuant Laser Driver Software under Windows 10 |
| Connector | Sub-D9 female |
| Baud rate | 115200 |
| Data | 8 bit |
| Parity | none |
| Stop | 1 bit |
| Connector | LEMO, PicoQuant proprietary interface to connect to dedicated Sepia Extention Module SEM 828 |
| Compatibility | PicoQuant Laser Driver Software under Windows 10 |
| Connector | SMA female |
| Connector | 4 pin LEMO EGG.00.304.CLL female |
| Size (l × w × h) | 352 × 336 × 82.5 mm |
| Weight | Single beam versions typ. 6.5 kg, multi-beam versions up to 9 kg |

All Information given here is reliable to our best knowledge. However, no responsibility is assumed for possible inaccuracies or omissions. Specifications and external appearances are subject to change without notice.
VisUV is a versatile high-power UV to visible picosecond laser that delivers clean, short pulses and stable timing across key wavelengths including deep-UV lines as well as 488 nm and 532 nm. Any wavelength is available individually or in combination with one or two other wavelengths. Built on a master oscillator fiber amplifier (MOFA) architecture, it provides < 85 ps pulse widths with exceptional beam quality (M² down to 1.02), enabling precise excitation and efficient fluorescence generation. The available repetition rates range from single shot to 80 megahertz and support a smooth adaptation to a wide variety of spectroscopy and microscopy workflows. Designed for demanding UV excitation, multicolor configurations and time-resolved measurements, VisUV offers reliable high-quality performance in a compact stand-alone platform.
Temporal emission profiles of the VisUV-280 picosecond laser (blue) and the PLS-280 pulsed LED (grey). The VisUV delivers pulses of ~80 ps FWHM, compared to ~750 ps for the LED source.Excitation in the deep-UV range around 280 nm opens access to intrinsic protein fluorescence and enables highly sensitive lifetime analysis of aromatic amino acids such as tryptophan. When short picosecond pulses with high stability and narrow spectral width are used, even subtle structural or environmental changes become measurable with excellent temporal resolution and significantly reduced acquisition times.
Wide-field microscopy is increasingly used for fast, parallel imaging of large fields of view in both life and materials science. Visible picosecond excitation at 488 nm and 560 nm provides efficient fluorophore excitation while maintaining low phototoxicity and high temporal precision. This makes these wavelengths particularly well suited for wide-field fluorescence imaging, including time-resolved and lifetime-based approaches.
Composite fluorescence lifetime images of three organoids acquired using volumetric light-sheet FLIM across a depth of 70 µm. The data show lifetime-based signal separation in 3D with 1 s acquisition time per plane. Adapted from Dunsing-Eichenauer et al., Communications Biology (2025).Excitation at 488 nm and 532 nm is essential across life and materials science, as these wavelengths efficiently address a wide range of fluorescent probes and functional labels. They enable fast, low-photodamage measurements with high photon efficiency, supporting lifetime analysis, multiplexed readouts and quantitative studies. This makes them powerful tools for investigating dynamic processes in complex biological samples and advanced material systems.
For VisUV, a fiber coupled output is available, supporting both single mode and multi-mode fibers. Typical efficiencies are above 60 % in single mode and above 80 % in multi-mode. Each configuration is aligned in-house to ensure a clean and dependable beam at the fiber exit.
Access in-depth application notes and scientific posters with detailed methods, measurement data, and real-world use cases.
Poster presenting a 280 nm picosecond UV laser for fast fluorescence lifetime measurements of proteins, enabling higher signal intensity and faster TCSPC analysis.
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Describing high-power picosecond lasers from 266–590 nm with <85 ps pulses, up to 80 MHz repetition rate and flexible multi-wavelength configurations.
Combine compatible components to build a complete system tailored to your experimental requirements and measurement workflows.
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