Mode Control and Dynamic Population Gratings in Quantum-Dot Lasers
Abstract
Single-mode operation is essential for integrated semiconductor lasers, yet most solutions rely on regrowth, etched gratings, or other complex fabrication steps that limit scalability. We show that quantum-dot (QD) lasers can achieve stable single-mode lasing through a simple cavity design using dynamic population gratings (DPGs). Owing to the low lateral carrier diffusion of QDs, a strong standing-wave-induced carrier grating forms in a reverse-biased saturable absorber and provides self-aligned, mode-selective feedback not attainable in quantum-well devices. A single-ring laser achieves 46 dB side-mode suppression ratio (SMSR), while a dual-ring Vernier laser delivers ( 46 nm) tuning range and up to 52.6 dB SMSR, with continuous-wave operation up to . The laser remains single-mode under dB external optical feedback and supports isolator-free data transmission at 32 Gbps. These results establish DPG-enabled QD lasers as a simple and scalable route to tunable, feedback-resilient on-chip light sources for communication, sensing, and reconfigurable photonic systems.
Keywords
Cite
@article{arxiv.2512.09740,
title = {Mode Control and Dynamic Population Gratings in Quantum-Dot Lasers},
author = {Xiangpeng Ou and Artem Prokoshin and Hongyan Yu and Xin Yao and Ying Shi and William He and Zhican Zhou and Yating Wan},
journal= {arXiv preprint arXiv:2512.09740},
year = {2025}
}