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How resonator design improves performance of quantum cascade laser-pumped molecular lasers.

Created on 14 Aug 2026

Authors

Arman Amirzhan, Paul Chevalier, Henry O Everitt, Federico Capasso

Published in

Optics express. Volume 34. Issue 14. Pages 26553-26570. Jul 13, 2026.

Abstract

The widespread application of terahertz (THz) technology remains limited by the need for compact, room-temperature, high-power sources. The quantum cascade laser (QCL) pumped molecular laser (QPML) is what we feel is a promising new THz source with great tunability and high spectral brightness, but its performance is limited by competing requirements: maintaining a stable, low-loss THz resonator while maximizing infrared (IR) absorption and minimizing IR feedback that destabilizes the QCL pump. This work systematically explores how to achieve the best of both high-pump absorption and minimal back-reflection. The lasing performance of a fluoromethane (CH3F) gain medium in various Fabry-Perot resonator (FPR) geometries is compared using experimental measurements of lasing threshold and output power. Then, by computational modeling of each FPR geometry and a compact copper waveguide, the pumping efficiency and the amount of back-reflection are evaluated and correlated with experimental findings. Lastly, the performance of these resonators is compared for ammonia (NH3) and carbonyl sulfide (OCS) gain media. Our optimized FPR achieved a maximum emission power of 2 mW for NH3, the highest continuous-wave power reported for a QPML to date. These results provide a clear optimization pathway for designing stable and efficient QPMLs suitable for practical applications.

PMID:
42596215
Bibliographic data and abstract were imported from PubMed on 14 Aug 2026.

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