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xenon light source氙灯

PLS-SXE300+/UV Xenon lamp light source

PLS-SXE300+/UV 氙灯光源

Column:氙灯Brand:PerfectlightViews:1937
PLS-SXE300+/UV Xenon lamp light source
  • Introduction
  • Application
  • Literature
  • Maintenance

Key Features

● Basic Xenon Lamp Light Source with high cost-effectiveness;

● Large-sized heat sink design, suitable for prolonged continuous irradiation requirements;

● Reliable performance tested by users for over a decade.

 

Application Areas 

▲ Specialized use ● Moderately suitable ○ Can be used

▲ Photocatalytic Hydrogen/Oxygen Production from Water ▲ Photocatalytic Complete Water Splitting ▲ Photocatalytic CO₂ Reduction

● Photodegradation of Gaseous Pollutants (such as VOCs, formaldehyde, nitrogen oxides, sulfur oxides, etc.)

● Photodegradation of Liquid Pollutants (such as dyes, benzene, and benzene derivatives)

○ Photocatalytic Quantum Efficiency Measurements ○ PEC (Photoelectrochemical) Experiments ○ Photosynthesis ○ Membrane Photocatalysis ○ Photoinduced Color Change

 

Light Output Characteristics

● Total light power: 50 W;

● Spectral range: 320~780 nm, extendable to 2500 nm;

● Compatible with filters: UV region, visible light region, near-infrared region, and narrow-band light;

● Light source emission angle: Average 6°;

● Light spot diameter: Varies with distance, typically 30~60 mm;

 

Light Source Stability

● Long-term irradiation instability: ≤±3%;

● Controlled through centralized digital power management software based on a microCPU;

 

Safety

● Lamp-box-power connection cables have no high-voltage transmission characteristics;

● Metal lamp box for electromagnetic interference shielding;

 

Control Method

● Operating mode: Program-controlled mode;

● Current limit: 21 A;

● Lamp (consumable) lifespan: >1000 h (meeting light intensity requirements under normal photocatalysis conditions);

● Trigger mode: Integrated high-voltage trigger (secondary voltage with no high-voltage transmission);

 

Basic Parameters

● Lamp power: 300 W;

● Power adjustment range: 150 W~300 W;

  • Photocatalytic Hydrogen/Oxygen Production from Water
  • Photocatalytic Complete Water Splitting
  • Photocatalytic CO₂ Reduction
  • Photodegradation of Gaseous Pollutants
  • Photodegradation of Liquid Pollutants
  • Photocatalytic Quantum Efficiency Measurements
  • PEC (Photoelectrochemical) Experiments
  • Photosynthesis
  • Membrane Photocatalysis
  • Photoinduced Color Change
  • [1] Z. Zhang, Y. Zhao, J. Shen, et al., Synthesis of 1D Bi12O17ClxBr2−x nanotube solid solutions with rich oxygen vacancies for highly efficient removal of organic pollutants under visible light, Applied Catalysis B: Environmental, 2020, 269, 118774.
  • [2] F. Chen, Z. Ma, L. Ye, et al., Macroscopic Spontaneous Polarization and Surface Oxygen Vacancies Collaboratively Boosting CO2 Photoreduction on BiOIO3 Single Crystals, Advanced Materials, 2020, 32, 1908350.
  • [3] X. Jiao, Z. Chen, X. Li, et al., Defect-Mediated Electron-Hole Separation in One-Unit-Cell ZnIn2S4 Layers for Boosted Solar-Driven CO2 Reduction, J Am Chem Soc, 2017, 139, 7586-7594. 
  • [4] G. Li, L. Xu, W. Zhang, et al., Narrow-Bandgap Chalcogenoviologens for Electrochromism and Visible-Light-Driven Hydrogen Evolution, Angew Chem Int Ed Engl, 2018, 57, 4897-4901.
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