Optical feedback induced irregular and chaotic dynamics in terahertz quantum cascade laser combs
Xiaoqiong Qi, Carlo Silvestri, Thomas Taimre, and Aleksandar D. Rakic

TL;DR
This paper investigates how optical feedback affects the dynamics of terahertz quantum cascade laser combs, revealing routes to chaos and complex behaviors that could enable new applications in sensing and secure communications.
Contribution
It provides the first detailed analysis of chaotic dynamics and bifurcation routes in THz QCLs under optical feedback using the effective semiconductor Maxwell-Bloch equations.
Findings
Stable comb operation at low feedback
Transition to chaos at higher bias and feedback levels
Dependence of chaos on linewidth enhancement factor
Abstract
In this work, we systematically investigate the optical feedback dynamics of terahertz (THz) frequency combs generated from quantum cascade lasers (QCLs) using the effective semiconductor Maxwell-Bloch equations (ESMBEs). Starting from a free-running comb state at low bias (1.3Ith), we identify clear bifurcation routes as the external feedback is increased. In the weak feedback regime (C<1), the frequency comb operation remains stable; as feedback increases to the moderate feedback regime (1<C<2.4), the system transitions through frequency splitting into period-one (P1) oscillations around each comb, followed by higher-order bifurcations (P2, P4, P8). Within the range 2.4<C<13.86, only combs with P1 states are observed, with the split frequency increasing continuously with feedback strength. In the strong feedback regime (C>13.86), complex feedback dynamics re-emerged but with…
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Taxonomy
TopicsSpectroscopy and Laser Applications · Semiconductor Lasers and Optical Devices · Chaos control and synchronization
