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April 24, 2026Photonics0 citationsOpen Access

Advanced Dual-Wavelength and Dual-Frequency VECSEL Architectures: Design Principles and Application-Driven Performance Metrics

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LCLéa Chaccour

Key Points

  • The review examines advancements in dual-wavelength and dual-frequency VECSEL architectures for their applications in various photonic fields.
  • Highlighted configurations utilizing birefringent crystals for frequency separation
  • Explored advanced designs with dual-VECSEL chips
  • Discussed performance metrics in applications like LIDAR and optical clocks.
  • Dual-wavelength VECSELs showed enhanced performance in spectroscopy and THz generation.
  • Improvements in frequency stability and spectral purity observed in dual-frequency systems.
  • Measured high brightness and excellent beam quality from the advanced VECSEL designs.

Abstract

Vertical-External-Cavity Surface-Emitting Lasers (VECSELs) have gained significant attention over the past two decades due to their versatility in a wide range of photonic applications. This review focuses on VECSEL configurations for dual-wavelength emission, highlighting their use in high-resolution spectroscopy, terahertz (THz) generation, and advanced optical communication. We explore recent developments in VECSEL designs, including systems utilizing birefringent crystals for polarization-based frequency separation and configurations with dual-VECSEL chips or dual-gain regions within a single cavity. These two-wavelength VECSELs enable diverse operation modes, including narrow-linewidth, pulsed, multimode, and frequency-converted emission, with high-brightness output, excellent beam quality, and tunable wavelengths. Additionally, the review discusses advancements in dual-frequency VECSELs, with applications in LIDAR systems for environmental monitoring, highly stable optical clocks, and fiber sensors. We examine improvements in cavity design, semiconductor structures, and power stabilization, which have enhanced frequency stability and spectral purity, making VECSELs suitable for precision metrology and sensing applications.

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Cite This Study

Léa Chaccour (2026) studied this question.

synapsesocial.com/papers/69eb08ef553a5433e34b3a1ahttps://doi.org/10.3390/photonics13050404
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