Saved in:
Bibliographic Details
Main Authors: Popp, Johannes, Seitner, Lukas, Schreiber, Michael, Haider, Michael, Consolino, Luigi, Sorgi, Alessia, Cappelli, Francesco, De Natale, Paolo, Fujita, Kazuue, Jirauschek, Christian
Format: Recurso digital
Language:
Published: Zenodo 2023
Online Access:https://doi.org/10.1063/5.0151036
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866901046134046720
author Popp, Johannes
Seitner, Lukas
Schreiber, Michael
Haider, Michael
Consolino, Luigi
Sorgi, Alessia
Cappelli, Francesco
De Natale, Paolo
Fujita, Kazuue
Jirauschek, Christian
author_facet Popp, Johannes
Seitner, Lukas
Schreiber, Michael
Haider, Michael
Consolino, Luigi
Sorgi, Alessia
Cappelli, Francesco
De Natale, Paolo
Fujita, Kazuue
Jirauschek, Christian
contents <p>Portable terahertz (THz) frequency comb sources are highly desired for applications in rotational molecular spectroscopy and sensing. To date, direct THz quantum cascade laser (QCL) frequency comb generation is not achievable at room temperature. However, THz comb generation based on intracavity difference frequency generation (DFG) in mid-infrared (mid-IR) QCLs is a promising alternative. Here, we present a numerical study of THz DFG-QCL comb formation in mid-IR QCLs based on a self-consistent multi-domain simulation approach. The dynamical simulations are performed using our open-source software tool mbsolve, which provides a flexible and efficient codebase for solving the generalized full-wave Maxwell–Bloch equations. Here, DFG in the active region of a dual-wavelength mid-IR QCL is considered for the generation of THz radiation. The mixing process and, thus, THz generation require a high second-order intersubband nonlinear susceptibility in the QCL active region and can be obtained by targeted quantum engineering. The associated nonlinear effects are included in the Hamiltonian of our Maxwell–Bloch simulation approach. All necessary input parameters for the description of the quantum system are determined self-consistently using our in-house ensemble Monte Carlo software tool for stationary carrier transport simulations. Notably, such simulations require a full-wave Maxwell–Bloch solver that does not employ the common rotating wave approximation, as a broadband optical field extending from the THz to the mid-IR region is investigated. Our modeling approach and the obtained simulation results for two THz DFG-QCL comb setups are validated against experimental data, showing reasonable agreement. Furthermore, we obtain a locked frequency modulated comb state for mid-IR and THz regimes.</p>
format Recurso digital
id zenodo_https___doi_org_10_1063_5_0151036
institution Zenodo
language
publishDate 2023
publisher Zenodo
record_format zenodo
spellingShingle Self-consistent simulations of intracavity terahertz comb difference frequency generation by mid-infrared quantum cascade lasers
Popp, Johannes
Seitner, Lukas
Schreiber, Michael
Haider, Michael
Consolino, Luigi
Sorgi, Alessia
Cappelli, Francesco
De Natale, Paolo
Fujita, Kazuue
Jirauschek, Christian
<p>Portable terahertz (THz) frequency comb sources are highly desired for applications in rotational molecular spectroscopy and sensing. To date, direct THz quantum cascade laser (QCL) frequency comb generation is not achievable at room temperature. However, THz comb generation based on intracavity difference frequency generation (DFG) in mid-infrared (mid-IR) QCLs is a promising alternative. Here, we present a numerical study of THz DFG-QCL comb formation in mid-IR QCLs based on a self-consistent multi-domain simulation approach. The dynamical simulations are performed using our open-source software tool mbsolve, which provides a flexible and efficient codebase for solving the generalized full-wave Maxwell–Bloch equations. Here, DFG in the active region of a dual-wavelength mid-IR QCL is considered for the generation of THz radiation. The mixing process and, thus, THz generation require a high second-order intersubband nonlinear susceptibility in the QCL active region and can be obtained by targeted quantum engineering. The associated nonlinear effects are included in the Hamiltonian of our Maxwell–Bloch simulation approach. All necessary input parameters for the description of the quantum system are determined self-consistently using our in-house ensemble Monte Carlo software tool for stationary carrier transport simulations. Notably, such simulations require a full-wave Maxwell–Bloch solver that does not employ the common rotating wave approximation, as a broadband optical field extending from the THz to the mid-IR region is investigated. Our modeling approach and the obtained simulation results for two THz DFG-QCL comb setups are validated against experimental data, showing reasonable agreement. Furthermore, we obtain a locked frequency modulated comb state for mid-IR and THz regimes.</p>
title Self-consistent simulations of intracavity terahertz comb difference frequency generation by mid-infrared quantum cascade lasers
url https://doi.org/10.1063/5.0151036