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1.0 µm Ultra-Low Noise Seed Laser
The 1.0 µm ultra-low noise seed laser is engineered for high-end applications such as new energy laser driving, coherent photoradar, precision interferometry, and quantum optics. Utilizing advanced low-RIN laser technology paired with a highly stable power control architecture, it effectively suppresses noise accumulation within the system.
This ensures long-term power stability, extremely low intensity fluctuations, and enhanced detection sensitivity, significantly improving the overall accuracy and performance of related optical systems.
Key Features
- Ultra-low intensity noise for high-end, noise-sensitive optical systems.
- Exceptional long-term power stability enabled by a highly stable power control architecture.
- Effectively suppresses noise accumulation within amplifier chains and detection subsystems.
- Narrow-linewidth, single-frequency operation for high spectral purity and coherence.
- Fully independent intellectual property rights for reliable long-term availability.
Application Areas
- New energy laser driving
- Coherent photoradar
- Precision interferometry
- Quantum optics
- Other noise-sensitive measurement and sensing fields


Product Information


1.0 µm Ultra-Low Noise Seed Laser
The 1.0 µm ultra-low noise seed laser is engineered for high-end applications such as new energy laser driving, coherent photoradar, precision interferometry, and quantum optics. Utilizing advanced low-RIN laser technology paired with a highly stable power control architecture, it effectively suppresses noise accumulation within the system. This ensures long-term power stability, extremely low intensity fluctuations, and enhanced detection sensitivity, significantly improving the overall accuracy and performance of related optical systems.
Key features
Highlights- ✓Ultra-low intensity & phase noise
- ✓Narrow linewidth for coherent systems
- ✓Temperature controlled wavelength stability
- ✓Fiber-coupled output (PM/SM options)
- ✓Compact, ruggedized module for lab & OEM use
- ✓Low drift under continuous operation
- ✓Seed source for fiber amplifiers
- ✓Coherent LIDAR research & prototypes
Applications
Use casesProduct Deep Dive
Discover the innovative engineering and superior performance that define our laser systems.
Overview of the 1.0 µm Ultra-Low Noise Seed Laser
The 1.0 µm Ultra-Low Noise Seed Laser provides an extremely stable, narrow-linewidth optical source designed for coherent detection, amplifier seeding and precision measurements. Built for low intensity noise and long-term wavelength stability, it integrates easily into lab and industrial systems.
Key Features
- Ultra-low intensity & phase noise
- Narrow linewidth for coherent systems
- Temperature controlled wavelength stability
- Fiber-coupled output (PM/SM options)
- Compact, ruggedized module for lab & OEM use
- Low drift under continuous operation
Technical Design
Engineered with a stabilized optical cavity, precision TEC control and low-noise drive electronics, the laser maintains spectral purity and minimal amplitude/phase noise suitable for high-accuracy experiments and instrument seeding.
Typical Specifications
Optical
Electrical & Mechanical
Applications
- Seed source for fiber amplifiers
- Coherent LIDAR research & prototypes
- High-resolution spectroscopy
- Precision optical sensing and metrology
- Quantum optics experiments requiring low phase noise
Integration & Support
Units are supplied with integration support, configuration options for power and polarization, and application notes for seeding amplifier chains. Contact our sales team for custom OEM options and detailed integration guidance.


The 1.0 µm ultra-low noise seed laser is engineered for high-end applications such as new energy laser driving, coherent photoradar, precision interferometry, and quantum optics. Utilizing advanced low-RIN laser technology paired with a highly stable power control architecture, it effectively suppresses noise accumulation within the system. This ensures long-term power stability, extremely low intensity fluctuations, and enhanced detection sensitivity, significantly improving the overall accuracy and performance of related optical systems.
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