Book contents
- Frontmatter
- Dedication
- Contents
- Preface
- Part I Bandstructure Engineering, Modeling and State-of-the-Art QCLs
- Part II Active Research Topics
- 7 Quantum Cascade Laser Frequency Combs
- 8 Frequency Noise and Frequency Stabilization of QCLs
- 9 Distributed-Feedback and Beam Shaping in Monolithic Terahertz QCLs
- 10 Metasurface-based THz Quantum Cascade Lasers
- 11 Terahertz Quantum Cascade Laser Sources Based on Intra-Cavity Difference-Frequency Generation
- Part III Applications
- Index
11 - Terahertz Quantum Cascade Laser Sources Based on Intra-Cavity Difference-Frequency Generation
from Part II - Active Research Topics
Published online by Cambridge University Press: 25 August 2023
- Frontmatter
- Dedication
- Contents
- Preface
- Part I Bandstructure Engineering, Modeling and State-of-the-Art QCLs
- Part II Active Research Topics
- 7 Quantum Cascade Laser Frequency Combs
- 8 Frequency Noise and Frequency Stabilization of QCLs
- 9 Distributed-Feedback and Beam Shaping in Monolithic Terahertz QCLs
- 10 Metasurface-based THz Quantum Cascade Lasers
- 11 Terahertz Quantum Cascade Laser Sources Based on Intra-Cavity Difference-Frequency Generation
- Part III Applications
- Index
Summary
Terahertz quantum cascade laser sources based on intra-cavity difference frequency generation are currently the only electrically-pumped monolithic semiconductor light sources providing broadly-tunable terahertz output at frequencies up to 6 THz at room temperature. Relying on the active regions with the giant second-order nonlinear susceptibility and the Cherenkov phase matching scheme, these devices demonstrated drastic improvements in performance in the past several years and can now produce narrow-linewidth single-mode terahertz emission that is tunable from below 1 THz to almost 6 THz with power output sufficient for imaging and spectroscopic applications. This chapter provides a comprehensive overview of this device technology
- Type
- Chapter
- Information
- Mid-Infrared and Terahertz Quantum Cascade Lasers , pp. 342 - 370Publisher: Cambridge University PressPrint publication year: 2023