Paper
4 March 2013 Transverse mode control in quantum cascade lasers via lossy lateral constrictions
Author Affiliations +
Proceedings Volume 8640, Novel In-Plane Semiconductor Lasers XII; 86401V (2013) https://doi.org/10.1117/12.2009408
Event: SPIE OPTO, 2013, San Francisco, California, United States
Abstract
Quantum Cascade (QC) lasers are semiconductor devices operating in the mid-infrared and terahertz regions of the electromagnetic spectrum. Since their first demonstration in 1994, they have evolved rapidly into high power devices. However, they also have intrinsic challenges, such as beam steering at high power. Such phenomenon has been observed in QC lasers and attributed to the interaction between the two lowest transverse modes in the laser cavity.

In this project, we have used COMSOL Multiphysics simulations to first investigate how transverse mode propagation can be controlled with cavity spoilers. We have modeled this effect by creating short and lossy lateral constrictions from the top of the laser ridge to perturb the modes distributed more toward the sides of the laser ridge, while leaving the fundamental mode intact. After obtaining optimized dimensions for the constrictions, we have utilized focused ion beam (FIB) milling to etch two small trenches from the top of several laser ridges to create the simulated effect on our devices. We, then, filled them with platinum in an effort to completely suppress the propagation of higher order transverse modes in the cavity. The results obtained show minimal effect on threshold and a Gaussian far-field distribution at various current levels, indicating a complete suppression of the higher order transverse modes.
© (2013) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Pierre M. Bouzi, Peter Q. Liu, Nyan Aung, Xiaojun Wang, Jen-Yu Fan, Mariano Troccoli, and Claire F. Gmachl "Transverse mode control in quantum cascade lasers via lossy lateral constrictions", Proc. SPIE 8640, Novel In-Plane Semiconductor Lasers XII, 86401V (4 March 2013); https://doi.org/10.1117/12.2009408
Lens.org Logo
CITATIONS
Cited by 1 scholarly publication.
Advertisement
Advertisement
RIGHTS & PERMISSIONS
Get copyright permission  Get copyright permission on Copyright Marketplace
KEYWORDS
Quantum cascade lasers

Etching

Metals

Platinum

Refractive index

Radio propagation

Semiconductor lasers

RELATED CONTENT


Back to Top