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PHAROS

High-Energy Femtosecond Lasers

Quantity

Key Highlights

  • Maximum pulse energy of up to 5 mJ
  • Down to < 100 fs right at the output
  • Tunable pulse duration, 100 fs – 20 ps
  • Pulse-on-demand and BiBurst for pulse control
  • Automated harmonics up to the 5th or tunable extensions
  • CEP stabilization or repetition rate locking

Description

PHAROS femtosecond lasers combine multi‑millijoule pulse energy and high average power, featuring a robust optomechanical design optimized for both scientific and industrial applications. The thermally stabilized and sealed design ensures seamless integration into various optical setups and machining workstations, delivering exceptional laser lifetime and stable operation across varying environments.

PHAROS provides unparalleled versatility, covering applications that would typically require multiple laser systems. Its key tunable parameters include pulse duration (100 fs – 20 ps), repetition rate (single-shot – 1 MHz), pulse energy (up to 5 mJ), and average power (up to 20 W).

The built-in pulse picker enables a pulse-on-demand mode, further enhancing operational flexibility. Additionally, the versatility of PHAROS femtosecond lasers can be further extended by a variety of options, including carrier-envelope phase (CEP) stabilization, repetition rate locking to an external source, automated harmonic modules, and optical parametric amplifiers.

Specifications

Laser Type: High-Energy Femtosecond Laser
Wavelength: 1030 ± 10 nm
Output Power: Up to 20 W
Pulse Energy: Up to 5 mJ
Pulse Duration: <100 fs
Repetition Rate: Single-shot–1 MHz
Beam Quality: M² < 1.3
Polarization: Linear, Horizontal
Pulse Selection: Pulse-on-demand / Pulse Picker
Options: BiBurst, CEP Stabilization, Harmonic Generator, OPA

Specifications vary by PHAROS model and configuration.

Application

  • Precision Micromachining
  • Ultrafast Spectroscopy
  • Nonlinear Optics
  • Scientific Research
  • Semiconductor & Microelectronics Processing
  • 3D Microfabrication
  • High-Field & Ultrafast Physics
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